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description Publicationkeyboard_double_arrow_right Article , Journal 2018Publisher:IOP Publishing Funded by:NSERCNSERCAuthors: Peter M Lafleur; Elyn R Humphreys;Increased shrub cover on the Arctic tundra is expected to impact ecosystem-atmosphere exchanges of carbon and energy resulting in feedbacks to the climate system, yet few direct measurements of shrub tundra-atmosphere exchanges are available to corroborate expectations. Here we present energy and carbon dioxide (CO _2 ) fluxes measured using the eddy covariance technique over six growing seasons at three closely located tundra sites in Canada’s Low Arctic. The sites are dominated by the tundra shrub Betula glandulosa , but percent cover varies from 17%–60% and average shrub height ranges from 18–59 cm among sites. The site with greatest percent cover and height had greater snow accumulation, but contrary to some expectations, it had similar late-winter albedo and snow melt dates compared to the other two sites. Immediately after snowmelt latent heat fluxes increased more slowly at this site compared to the others. Yet by the end of the growing season there was little difference in cumulative latent heat flux among the sites, suggesting evapotranspiration was not increased with greater shrub cover. In contrast, lower albedo and less soil thaw contributed to greater summer sensible heat flux at the site with greatest shrub cover, resulting in greater total atmospheric heating. Net ecosystem exchange of CO _2 revealed the potential for enhanced carbon cycling rates under greater shrub cover. Spring CO _2 emissions were greatest at the site with greatest percent cover of shrubs, as was summer net uptake of CO _2 . The seasonal net sink for CO _2 was ~2 times larger at the site with the greatest shrub cover compared to the site with the least shrub cover. These results largely agree with expectations that the growing season feedback to the atmosphere arising from shrub expansion in the Arctic has the potential to be negative for CO _2 fluxes but positive for turbulent energy fluxes.
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For further information contact us at helpdesk@openaire.euAccess Routesgold 39 citations 39 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type 2024 Canada, Canada, Denmark, Finland, SwedenPublisher:Springer Science and Business Media LLC Funded by:NSF | LTER: Changing Disturbanc..., AKA | Towards mechanistic under..., NSERC +5 projectsNSF| LTER: Changing Disturbances, Ecological Legacies, and the Future of the Alaskan Boreal Forest ,AKA| Towards mechanistic understanding of reindeer impacts on wetland carbon balance (ReindeerPaths) ,NSERC ,NSF| Collaborative Research: Vegetation And Ecosystem Impacts On Permafrost Vulnerability ,AKA| Land use as a modulator of land cover transitions and the ecosystem–atmosphere carbon balance (LANDMOD) ,AKA| RESILIENCE IN SOCIAL-ECOLOGICAL SYSTEMS IN IN NORTHWEST EURASIA (RISES) ,EC| CHARTER ,NSF| NNA Research: Collaborative Research: Fate of the Caribou: from local knowledge to range-wide dynamics in the changing ArcticLogan T. Berner; Kathleen M. Orndahl; Melissa Rose; Mikkel Tamstorf; Marie F. Arndal; Heather D. Alexander; Elyn R. Humphreys; Michael M. Loranty; Sarah M. Ludwig; Johanna Nyman; Sari Juutinen; Mika Aurela; Konsta Happonen; Juha Mikola; Michelle C. Mack; Mathew R. Vankoughnett; Colleen M. Iversen; Verity G. Salmon; Dedi Yang; Jitendra Kumar; Paul Grogan; Ryan K. Danby; Neal A. Scott; Johan Olofsson; Matthias B. Siewert; Lucas Deschamps; Esther Lévesque; Vincent Maire; Amélie Morneault; Gilles Gauthier; Charles Gignac; Stéphane Boudreau; Anna Gaspard; Alexander Kholodov; M. Syndonia Bret-Harte; Heather E. Greaves; Donald Walker; Fiona M. Gregory; Anders Michelsen; Timo Kumpula; Miguel Villoslada; Henni Ylänne; Miska Luoto; Tarmo Virtanen; Bruce C. Forbes; Norbert Hölzel; Howard Epstein; Ramona J. Heim; Andrew Bunn; Robert M. Holmes; Jacqueline K. Y. Hung; Susan M. Natali; Anna-Maria Virkkala; Scott J. Goetz;AbstractPlant biomass is a fundamental ecosystem attribute that is sensitive to rapid climatic changes occurring in the Arctic. Nevertheless, measuring plant biomass in the Arctic is logistically challenging and resource intensive. Lack of accessible field data hinders efforts to understand the amount, composition, distribution, and changes in plant biomass in these northern ecosystems. Here, we present The Arctic plant aboveground biomass synthesis dataset, which includes field measurements of lichen, bryophyte, herb, shrub, and/or tree aboveground biomass (g m−2) on 2,327 sample plots from 636 field sites in seven countries. We created the synthesis dataset by assembling and harmonizing 32 individual datasets. Aboveground biomass was primarily quantified by harvesting sample plots during mid- to late-summer, though tree and often tall shrub biomass were quantified using surveys and allometric models. Each biomass measurement is associated with metadata including sample date, location, method, data source, and other information. This unique dataset can be leveraged to monitor, map, and model plant biomass across the rapidly warming Arctic.
Natural Resources In... arrow_drop_down Natural Resources Institute Finland: JukuriArticleLicense: CC BYFull-Text: https://jukuri.luke.fi/handle/10024/555088Data sources: Bielefeld Academic Search Engine (BASE)Université du Québec à Trois-Rivières: Dépôt numérique de UQTRArticle . 2024License: CC BYData sources: Bielefeld Academic Search Engine (BASE)HELDA - Digital Repository of the University of HelsinkiArticle . 2024 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiCopenhagen University Research Information SystemArticle . 2024Data sources: Copenhagen University Research Information SystemPublikationer från Umeå universitetArticle . 2024 . Peer-reviewedData sources: Publikationer från Umeå universitetDigitala Vetenskapliga Arkivet - Academic Archive On-lineArticle . 2024 . Peer-reviewedUniversity of Copenhagen: ResearchArticle . 2024Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 4 citations 4 popularity Average influence Average impulse Average Powered by BIP!
more_vert Natural Resources In... arrow_drop_down Natural Resources Institute Finland: JukuriArticleLicense: CC BYFull-Text: https://jukuri.luke.fi/handle/10024/555088Data sources: Bielefeld Academic Search Engine (BASE)Université du Québec à Trois-Rivières: Dépôt numérique de UQTRArticle . 2024License: CC BYData sources: Bielefeld Academic Search Engine (BASE)HELDA - Digital Repository of the University of HelsinkiArticle . 2024 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiCopenhagen University Research Information SystemArticle . 2024Data sources: Copenhagen University Research Information SystemPublikationer från Umeå universitetArticle . 2024 . Peer-reviewedData sources: Publikationer från Umeå universitetDigitala Vetenskapliga Arkivet - Academic Archive On-lineArticle . 2024 . Peer-reviewedUniversity of Copenhagen: ResearchArticle . 2024Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2015Publisher:Wiley Funded by:NSERCNSERCCraig A. Emmerton; Vincent L. St. Louis; Elyn R. Humphreys; John A. Gamon; Joel D. Barker; Gilberto Z. Pastorello;doi: 10.1111/gcb.13064
pmid: 26279166
AbstractHigh Arctic landscapes are expansive and changing rapidly. However, our understanding of their functional responses and potential to mitigate or enhance anthropogenic climate change is limited by few measurements. We collected eddy covariance measurements to quantify the net ecosystem exchange (NEE) of CO2 with polar semidesert and meadow wetland landscapes at the highest latitude location measured to date (82°N). We coupled these rare data with ground and satellite vegetation production measurements (Normalized Difference Vegetation Index; NDVI) to evaluate the effectiveness of upscaling local to regional NEE. During the growing season, the dry polar semidesert landscape was a near‐zero sink of atmospheric CO2 (NEE: −0.3 ± 13.5 g C m−2). A nearby meadow wetland accumulated over 300 times more carbon (NEE: −79.3 ± 20.0 g C m−2) than the polar semidesert landscape, and was similar to meadow wetland NEE at much more southerly latitudes. Polar semidesert NEE was most influenced by moisture, with wetter surface soils resulting in greater soil respiration and CO2 emissions. At the meadow wetland, soil heating enhanced plant growth, which in turn increased CO2 uptake. Our upscaling assessment found that polar semidesert NDVI measured on‐site was low (mean: 0.120–0.157) and similar to satellite measurements (mean: 0.155–0.163). However, weak plant growth resulted in poor satellite NDVI–NEE relationships and created challenges for remotely detecting changes in the cycling of carbon on the polar semidesert landscape. The meadow wetland appeared more suitable to assess plant production and NEE via remote sensing; however, high Arctic wetland extent is constrained by topography to small areas that may be difficult to resolve with large satellite pixels. We predict that until summer precipitation and humidity increases enough to offset poor soil moisture retention, climate‐related changes to productivity on polar semideserts may be restricted.
Global Change Biolog... arrow_drop_down Global Change BiologyArticle . 2015 . Peer-reviewedLicense: Wiley Online Library User AgreementData sources: Crossrefadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1111/gcb.13064&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eu33 citations 33 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert Global Change Biolog... arrow_drop_down Global Change BiologyArticle . 2015 . Peer-reviewedLicense: Wiley Online Library User AgreementData sources: Crossrefadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1111/gcb.13064&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type 2022 United States, Italy, United States, Germany, FinlandPublisher:Wiley Funded by:NSF | METHANE AT THE ZERO CURTA..., EC | INTAROS, UKRI | Methane Production in the... +1 projectsNSF| METHANE AT THE ZERO CURTAIN ,EC| INTAROS ,UKRI| Methane Production in the Arctic: Under-recognized Cold Season and Upland Tundra - Arctic Methane Sources-UAMS ,NSF| Multi-decadal year-round CO2 and CH4 fluxes to understand long-term impact of climate change on the Arctic carbon balanceDonatella Zona; Peter M. Lafleur; Koen Hufkens; Beniamino Gioli; Barbara Bailey; George Burba; Eugénie S. Euskirchen; Jennifer D. Watts; Kyle A. Arndt; Mary Farina; John S. Kimball; Martin Heimann; Mathias Göckede; Martijn Pallandt; Torben R. Christensen; Mikhail Mastepanov; Efrén López‐Blanco; Albertus J. Dolman; Roisin Commane; Charles E. Miller; Josh Hashemi; Lars Kutzbach; David Holl; Julia Boike; Christian Wille; Torsten Sachs; Aram Kalhori; Elyn R. Humphreys; Oliver Sonnentag; Gesa Meyer; Gabriel H. Gosselin; Philip Marsh; Walter C. Oechel;AbstractLong‐term atmospheric CO2 concentration records have suggested a reduction in the positive effect of warming on high‐latitude carbon uptake since the 1990s. A variety of mechanisms have been proposed to explain the reduced net carbon sink of northern ecosystems with increased air temperature, including water stress on vegetation and increased respiration over recent decades. However, the lack of consistent long‐term carbon flux and in situ soil moisture data has severely limited our ability to identify the mechanisms responsible for the recent reduced carbon sink strength. In this study, we used a record of nearly 100 site‐years of eddy covariance data from 11 continuous permafrost tundra sites distributed across the circumpolar Arctic to test the temperature (expressed as growing degree days, GDD) responses of gross primary production (GPP), net ecosystem exchange (NEE), and ecosystem respiration (ER) at different periods of the summer (early, peak, and late summer) including dominant tundra vegetation classes (graminoids and mosses, and shrubs). We further tested GPP, NEE, and ER relationships with soil moisture and vapor pressure deficit to identify potential moisture limitations on plant productivity and net carbon exchange. Our results show a decrease in GPP with rising GDD during the peak summer (July) for both vegetation classes, and a significant relationship between the peak summer GPP and soil moisture after statistically controlling for GDD in a partial correlation analysis. These results suggest that tundra ecosystems might not benefit from increased temperature as much as suggested by several terrestrial biosphere models, if decreased soil moisture limits the peak summer plant productivity, reducing the ability of these ecosystems to sequester carbon during the summer.
IRIS Cnr arrow_drop_down GFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)Article . 2023License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of Freiburg: FreiDokArticle . 2023Full-Text: https://freidok.uni-freiburg.de/data/233637Data sources: Bielefeld Academic Search Engine (BASE)HELDA - Digital Repository of the University of HelsinkiArticle . 2023 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiGFZ German Research Centre for GeosciencesArticle . 2023License: CC BYData sources: GFZ German Research Centre for GeosciencesElectronic Publication Information CenterArticle . 2023Data sources: Electronic Publication Information Centeradd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1111/gcb.16487&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 31 citations 31 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert IRIS Cnr arrow_drop_down GFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)Article . 2023License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of Freiburg: FreiDokArticle . 2023Full-Text: https://freidok.uni-freiburg.de/data/233637Data sources: Bielefeld Academic Search Engine (BASE)HELDA - Digital Repository of the University of HelsinkiArticle . 2023 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiGFZ German Research Centre for GeosciencesArticle . 2023License: CC BYData sources: GFZ German Research Centre for GeosciencesElectronic Publication Information CenterArticle . 2023Data sources: Electronic Publication Information Centeradd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1111/gcb.16487&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article 2022 United StatesPublisher:American Geophysical Union (AGU) Funded by:NSERC, AKA | Methane uptake by permafr...NSERC ,AKA| Methane uptake by permafrost-affected soils – an underestimated carbon sink in Arctic ecosystems? (MUFFIN)Scott Zolkos; Suzanne E. Tank; Steven V. Kokelj; Robert G. Striegl; Sarah Shakil; Carolina Voigt; Oliver Sonnentag; William L. Quinton; Edward A. G. Schuur; Donatella Zona; Peter M. Lafleur; Ryan C. Sullivan; Masahito Ueyama; David Billesbach; David Cook; Elyn R. Humphreys; Philip Marsh;doi: 10.1029/2022gb007403
AbstractIntensifying permafrost thaw alters carbon cycling by mobilizing large amounts of terrestrial substrate into aquatic ecosystems. Yet, few studies have measured aquatic carbon fluxes and constrained drivers of ecosystem carbon balance across heterogeneous Arctic landscapes. Here, we characterized hydrochemical and landscape controls on fluvial carbon cycling, quantified fluvial carbon fluxes, and estimated fluvial contributions to ecosystem carbon balance across 33 watersheds in four ecoregions in the continuous permafrost zone of the western Canadian Arctic: unglaciated uplands, ice‐rich moraine, and organic‐rich lowlands and till plains. Major ions, stable isotopes, and carbon speciation and fluxes revealed patterns in carbon cycling across ecoregions defined by terrain relief and accumulation of organics. In previously unglaciated mountainous watersheds, bicarbonate dominated carbon export (70% of total) due to chemical weathering of bedrock. In lowland watersheds, where soil organic carbon stores were largest, lateral transport of dissolved organic carbon (50%) and efflux of biotic CO2 (25%) dominated. In watersheds affected by thaw‐induced mass wasting, erosion of ice‐rich tills enhanced chemical weathering and increased particulate carbon fluxes by two orders of magnitude. From an ecosystem carbon balance perspective, fluvial carbon export in watersheds not affected by thaw‐induced wasting was, on average, equivalent to 6%–16% of estimated net ecosystem exchange (NEE). In watersheds affected by thaw‐induced wasting, fluvial carbon export approached 60% of NEE. Because future intensification of thermokarst activity will amplify fluvial carbon export, determining the fate of carbon across diverse northern landscapes is a priority for constraining trajectories of permafrost region ecosystem carbon balance.
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You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1029/2022gb007403&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 4 citations 4 popularity Average influence Average impulse Average Powered by BIP!
more_vert add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euResearch data keyboard_double_arrow_right Dataset 2024Publisher:NSF Arctic Data Center Berner, Logan T.; Orndahl, Kathleen M.; Rose, Melissa; Tamstorf, Mikkel; Arndal, Marie F.; Alexander, Heather D.; Yang, Dedi; Sistla, Seeta; Humphreys, Elyn R.; Loranty, Michael M.; Ludwig, Sarah M.; Nyman, Johanna; Juutinen, Sari; Aurela, Mika; Happonen, Konsta; Mikola, Juha; Mack, Michelle C.; Vankoughnett, Mathew R.; Iversen, Colleen M.; Salmon, Verity G.; Kumar, Jitendra; Grogan, Paul; Danby, Ryan K.; Scott, Neal A.; Pold, Grace; Olofsson, Johan; Siewert, Matthias B.; Deschamps, Lucas; Lévesque, Esther; Maire, Vincent; Morneault, Amélie; Gauthier, Gilles; Gignac, Charles; Boudreau, Stéphane; Gaspard, Anna; Kholodov, Alexander; Bret-Harte, M. Syndonia; Greaves, Heather E.; Walker, Donald; Ylänne, Henni; Gregory, Fiona M.; Michelsen, Anders; Kumpula, Timo; Villoslada, Miguel; Luoto, Miska; Virtanen, Tarmo; Forbes, Bruce C.; Baillargeon, Natalie; Hölzel, Norbert; Epstein, Howard; Heim, Ramona J.; Bunn, Andrew; Holmes, Robert M.; Hung, Jacqueline K.Y.; Natali, Susan M.; Virkkala, Anna-Maria; Goetz, Scott J.;doi: 10.18739/a2qj78081
Plant biomass is a fundamental ecosystem attribute that is sensitive to rapid climatic changes occurring in the Arctic. Nevertheless, measuring plant biomass in the Arctic is logistically challenging and resource intensive. Lack of accessible field data hinders efforts to understand the amount, composition, distribution, and changes in plant biomass in these northern ecosystems. Here, we present The Arctic Plant Aboveground Biomass Synthesis Dataset, which includes field measurements of lichen, bryophyte, herb, shrub, and/or tree aboveground biomass grams per meter squared (g/m^2) on 2327 sample plots in seven countries. We created the synthesis dataset by assembling and harmonizing 32 individual datasets. Aboveground biomass was primarily quantified by harvesting sample plots during mid- to late-summer, though tree and often tall shrub biomass were quantified using surveys and allometric models. Each biomass measurement is associated with metadata including sample date, location, method, data source, and other information. This unique dataset can be leveraged to monitor, map, and model plant biomass across the rapidly warming Arctic.
add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eu0 citations 0 popularity Average influence Average impulse Average Powered by BIP!
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You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euResearch data keyboard_double_arrow_right Dataset 2024Publisher:NSF Arctic Data Center Berner, Logan T.; Orndahl, Kathleen M.; Rose, Melissa; Tamstorf, Mikkel; Arndal, Marie F.; Yang, Dedi; Humphreys, Elyn R.; Loranty, Michael M.; Ludwig, Sarah M.; Nyman, Johanna; Juutinen, Sari; Aurela, Mika; Happonen, Konsta; Mikola, Juha; Mack, Michelle C.; Vankoughnett, Mathew R.; Iversen, Colleen M.; Salmon, Verity G.; Kumar, Jitendra; Grogan, Paul; Danby, Ryan K.; Scott, Neal A.; Olofsson, Johan; Siewert, Matthias B.; Deschamps, Lucas; Lévesque, Esther; Maire, Vincent; Morneault, Amélie; Gauthier, Gilles; Gignac, Charles; Boudreau, Stéphane; Gaspard, Anna; Kholodov, Alexander; Bret-Harte, M. Syndonia; Greaves, Heather E.; Walker, Donald; Gregory, Fiona M.; Michelsen, Anders; Kumpula, Timo; Villoslada, Miguel; Ylänne, Henni; Luoto, Miska; Virtanen, Tarmo; Forbes, Bruce C.; Hölzel, Norbert; Epstein, Howard; Heim, Ramona J.; Bunn, Andrew; Holmes, Robert M.; Hung, Jacqueline K.Y.; Natali, Susan M.; Virkkala, Anna-Maria; Goetz, Scott J.;doi: 10.18739/a2k931783
Plant biomass is a fundamental ecosystem attribute that is sensitive to rapid climatic changes occurring in the Arctic. Nevertheless, measuring plant biomass in the Arctic is logistically challenging and resource intensive. Lack of accessible field data hinders efforts to understand the amount, composition, distribution, and changes in plant biomass in these northern ecosystems. Here, we present The Arctic Plant Aboveground Biomass Synthesis Dataset, which includes field measurements of lichen, bryophyte, herb, shrub, and/or tree aboveground biomass grams per meter squared (g/m^2) on 2327 sample plots in seven countries. We created the synthesis dataset by assembling and harmonizing 32 individual datasets. Aboveground biomass was primarily quantified by harvesting sample plots during mid- to late-summer, though tree and often tall shrub biomass were quantified using surveys and allometric models. Each biomass measurement is associated with metadata including sample date, location, method, data source, and other information. This unique dataset can be leveraged to monitor, map, and model plant biomass across the rapidly warming Arctic.
add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eu0 citations 0 popularity Average influence Average impulse Average Powered by BIP!
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You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.18739/a2k931783&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type , Journal 2014Embargo end date: 01 Jan 2014 Netherlands, Denmark, Germany, Switzerland, NorwayPublisher:Copernicus GmbH Funded by:EC | PAGE21, NSERC, NSF | Methane loss from Arctic:... +5 projectsEC| PAGE21 ,NSERC ,NSF| Methane loss from Arctic: towards an annual budget of CH4 emissions from tundra ecosystems across a latitudinal gradient ,NSF| BE/CBC: Biocomplexity Associated with the Response of Tundra Carbon Balance to Warming and Drying Across Multiple Spatial and Temporal Scales ,RCN| Greenhouse gases in the North: from local to regional scale ,NWO| Stability of carbon pools in far east Siberia ,EC| GREENCYCLESII ,NSF| Fire in Northern Alaska: Effect of a Changing Disturbance Regime on a Regional MacrosystemAuthors: Birger Ulf Hansen; Marcin Jackowicz-Korczynski; Torsten Sachs; Peter M. Lafleur; +16 AuthorsBirger Ulf Hansen; Marcin Jackowicz-Korczynski; Torsten Sachs; Peter M. Lafleur; Torben R. Christensen; Torben R. Christensen; Walter C. Oechel; Lars Kutzbach; Adrian V. Rocha; Werner Eugster; Magnus Lund; M. K. van der Molen; Mika Aurela; Thomas Friborg; Frans-Jan W. Parmentier; Frans-Jan W. Parmentier; Elyn Humphreys; Daniel P. Rasse; Mikkel P. Tamstorf; Herbert N. Mbufong;Abstract. This paper aims to assess the spatial variability in the response of CO2 exchange to irradiance across the Arctic tundra during peak season using light response curve (LRC) parameters. This investigation allows us to better understand the future response of Arctic tundra under climatic change. Peak season data were collected during different years (between 1998 and 2010) using the micrometeorological eddy covariance technique from 12 circumpolar Arctic tundra sites, in the range of 64–74° N. The LRCs were generated for 14 days with peak net ecosystem exchange (NEE) using an NEE–irradiance model. Parameters from LRCs represent site-specific traits and characteristics describing the following: (a) NEE at light saturation (Fcsat), (b) dark respiration (Rd), (c) light use efficiency (α), (d) NEE when light is at 1000 μmol m−2 s−1 (Fc1000), (e) potential photosynthesis at light saturation (Psat) and (f) the light compensation point (LCP). Parameterization of LRCs was successful in predicting CO2 flux dynamics across the Arctic tundra. We did not find any trends in LRC parameters across the whole Arctic tundra but there were indications for temperature and latitudinal differences within sub-regions like Russia and Greenland. Together, leaf area index (LAI) and July temperature had a high explanatory power of the variance in assimilation parameters (Fcsat, Fc1000 and Psat, thus illustrating the potential for upscaling CO2 exchange for the whole Arctic tundra. Dark respiration was more variable and less correlated to environmental drivers than were assimilation parameters. This indicates the inherent need to include other parameters such as nutrient availability, substrate quantity and quality in flux monitoring activities.
GFZpublic (German Re... arrow_drop_down https://doi.org/10.5194/bgd-11...Article . 2014 . Peer-reviewedLicense: CC BYData sources: CrossrefGFZ German Research Centre for GeosciencesArticle . 2014Data sources: GFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesArticle . 2014Data sources: GFZ German Research Centre for GeosciencesWageningen Staff PublicationsArticle . 2014License: CC BYData sources: Wageningen Staff PublicationsUniversity of Copenhagen: ResearchArticle . 2014Data sources: Bielefeld Academic Search Engine (BASE)http://dx.doi.org/10.5194/bg-1...Other literature typeData sources: European Union Open Data Portaladd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.5194/bg-11-4897-2014&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 24 citations 24 popularity Top 10% influence Average impulse Top 10% Powered by BIP!
more_vert GFZpublic (German Re... arrow_drop_down https://doi.org/10.5194/bgd-11...Article . 2014 . Peer-reviewedLicense: CC BYData sources: CrossrefGFZ German Research Centre for GeosciencesArticle . 2014Data sources: GFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesArticle . 2014Data sources: GFZ German Research Centre for GeosciencesWageningen Staff PublicationsArticle . 2014License: CC BYData sources: Wageningen Staff PublicationsUniversity of Copenhagen: ResearchArticle . 2014Data sources: Bielefeld Academic Search Engine (BASE)http://dx.doi.org/10.5194/bg-1...Other literature typeData sources: European Union Open Data Portaladd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.5194/bg-11-4897-2014&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2020 China (People's Republic of), China (People's Republic of), China (People's Republic of), Finland, DenmarkPublisher:IOP Publishing Funded by:NSERC, AKA | Role of upland forest soi..., AKA | Centre of Excellence in A... +3 projectsNSERC ,AKA| Role of upland forest soils in regional methane balance: from catchment to global scales / Consortium: UPFORMET ,AKA| Centre of Excellence in Atmospheric Science From Molecular and Biolocigal processes to The Global Climate ,NSF| LTER: Comparative Study of a Suite of Lakes in Wisconsin ,AKA| Carbon dynamics across Arctic landscape gradients: past, present and future (CAPTURE) / Consortium: CAPTURE ,EC| RINGOPavel Alekseychik; Daniel F. Nadeau; Brian D. Amiro; Vyacheslav Zyrianov; Allison L. Dunn; Manuel Helbig; Manuel Helbig; Mats Nilsson; Elena D. Lapshina; Annalea Lohila; Mika Korkiakoski; Mikaell Ottosson Löfvenius; Silvie Harder; Hiroki Ikawa; Christopher Schulze; Timo Vesala; Elyn Humphreys; Matthias Peichl; William L. Quinton; Nigel T. Roulet; Erin M. Nicholls; Anders Lindroth; Andrej Varlagin; Sean K. Carey; Ian B. Strachan; Richard M. Petrone; Eugénie S. Euskirchen; Lars Kutzbach; Oliver Sonnentag; Masahito Ueyama; Juha-Pekka Tuovinen; Michelle Garneau; Hiroki Iwata; Takeshi Ohta; Trofim C. Maximov; Ankur R. Desai; Alan G. Barr; Anatoly S. Prokushkin; Philip Marsh; Lawrence B. Flanagan; Pierre-Erik Isabelle; Paul A. Moore; Juliya Kurbatova; T. Andrew Black; Eeva-Stiina Tuittila; Mika Aurela; Jinshu Chi; Thomas Friborg; Martin Wilmking; Pierre Taillardat; Jiquan Chen; Benjamin R. K. Runkle; Benjamin R. K. Runkle; Rachhpal S. Jassal; Ivan Mammarella; Jessica Turner; James M. Waddington; Michal Heliasz; Achim Grelle;handle: 10138/321067
Peatlands and forests cover large areas of the boreal biome and are critical for global climate regulation. They also regulate regional climate through heat and water vapour exchange with the atmosphere. Understanding how land-atmosphere interactions in peatlands differ from forests may therefore be crucial for modelling boreal climate system dynamics and for assessing climate benefits of peatland conservation and restoration. To assess the biophysical impacts of peatlands and forests on peak growing season air temperature and humidity, we analysed surface energy fluxes and albedo from 35 peatlands and 37 evergreen needleleaf forests—the dominant boreal forest type—and simulated air temperature and vapour pressure deficit (VPD) over hypothetical homogeneous peatland and forest landscapes. We ran an evapotranspiration model using land surface parameters derived from energy flux observations and coupled an analytical solution for the surface energy balance to an atmospheric boundary layer (ABL) model. We found that peatlands, compared to forests, are characterized by higher growing season albedo, lower aerodynamic conductance, and higher surface conductance for an equivalent VPD. This combination of peatland surface properties results in a ∼20% decrease in afternoon ABL height, a cooling (from 1.7 to 2.5 °C) in afternoon air temperatures, and a decrease in afternoon VPD (from 0.4 to 0.7 kPa) for peatland landscapes compared to forest landscapes. These biophysical climate impacts of peatlands are most pronounced at lower latitudes (∼45°N) and decrease toward the northern limit of the boreal biome (∼70°N). Thus, boreal peatlands have the potential to mitigate the effect of regional climate warming during the growing season. The biophysical climate mitigation potential of peatlands needs to be accounted for when projecting the future climate of the boreal biome, when assessing the climate benefits of conserving pristine boreal peatlands, and when restoring peatlands that have experienced peatland drainage and mining.
Environmental Resear... arrow_drop_down HELDA - Digital Repository of the University of HelsinkiArticle . 2020 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiCopenhagen University Research Information SystemArticle . 2020Data sources: Copenhagen University Research Information SystemUniversity of Copenhagen: ResearchArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1088/1748-9326/abab34&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 33 citations 33 popularity Top 10% influence Average impulse Top 10% Powered by BIP!
more_vert Environmental Resear... arrow_drop_down HELDA - Digital Repository of the University of HelsinkiArticle . 2020 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiCopenhagen University Research Information SystemArticle . 2020Data sources: Copenhagen University Research Information SystemUniversity of Copenhagen: ResearchArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1088/1748-9326/abab34&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal , Other literature type 2015 Germany, Italy, United States, Italy, Italy, Italy, United States, Denmark, United States, United Kingdom, NetherlandsPublisher:Proceedings of the National Academy of Sciences Publicly fundedFunded by:EC | ICE-ARC, AKA | ICOS - Integrated Carbon ..., NSF | CAREER: Contrasting envir... +6 projectsEC| ICE-ARC ,AKA| ICOS - Integrated Carbon Observation System ,NSF| CAREER: Contrasting environmental controls on regional CO2 and CH4 biogeochemistry-Research and education for placing global change in a regional, local context ,RSF| The development of ecosystem spatial-temporal thermodynamics theory and methods of thermodynamic variables measurement ,AKA| Towards comprehensive understanding of surface layer exchange processes of biogenic volatile organic compounds ,NSERC ,NSF| Methane loss from Arctic: towards an annual budget of CH4 emissions from tundra ecosystems across a latitudinal gradient ,NSF| Measurement and Analysis of Methane Fluxes in a Northern Peatland Ecosystem ,NWO| Long term observation of soil carbon and methane fluxes in Siberian tundra.Ana Meijide; Arjan Hensen; Elmar Veenendaal; Magnus Lund; Magnus Lund; A. J. Dolman; Thomas Friborg; Derrick Y.F. Lai; Tuomas Laurila; Barbara Marcolla; Janne Rinne; Janne Rinne; Pertti J. Martikainen; Lawrence B. Flanagan; Alessandro Cescatti; Christian Bernhofer; Annalea Lohila; Andrej Varlagin; Torben R. Christensen; Torben R. Christensen; Dennis D. Baldocchi; Marcin Jackowicz-Korczynski; Narasinha J. Shurpali; Nigel T. Roulet; Thomas Grünwald; Walter C. Oechel; Juha-Pekka Tuovinen; Ute Skiba; Chiara A. R. Corradi; Gerard Kiely; Shashi B. Verma; Mika Aurela; A.P. Schrier-Uijl; Frans-Jan W. Parmentier; Frans-Jan W. Parmentier; A.M.R. Petrescu; Matteo Sottocornola; Jacobus van Huissteden; Carsten Grüning; Torsten Sachs; Mikhail Mastepanov; Mikhail Mastepanov; Lutz Merbold; Elyn Humphreys; Ankur R. Desai; Jaclyn Hatala Matthes; Timo Vesala; Donatella Zona; Donatella Zona; Mikkel P. Tamstorf;pmid: 25831506
pmc: PMC4403212
Significance Wetlands are unique ecosystems because they are in general sinks for carbon dioxide and sources of methane. Their climate footprint therefore depends on the relative sign and magnitude of the land–atmosphere exchange of these two major greenhouse gases. This work presents a synthesis of simultaneous measurements of carbon dioxide and methane fluxes to assess the radiative forcing of natural wetlands converted to agricultural or forested land. The net climate impact of wetlands is strongly dependent on whether they are natural or managed. Here we show that the conversion of natural wetlands produces a significant increase of the atmospheric radiative forcing. The findings suggest that management plans for these complex ecosystems should carefully account for the potential biogeochemical effects on climate.
Archivio istituziona... arrow_drop_down Fondazione Edmund Mach: IRIS-OpenPubArticle . 2015Full-Text: http://hdl.handle.net/10449/25239Data sources: Bielefeld Academic Search Engine (BASE)University of California: eScholarshipArticle . 2015Full-Text: https://escholarship.org/uc/item/46g0003pData sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2015Data sources: DANS (Data Archiving and Networked Services)Copenhagen University Research Information SystemArticle . 2015Data sources: Copenhagen University Research Information SystemGFZ German Research Centre for GeosciencesArticle . 2015Data sources: GFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesArticle . 2015Data sources: GFZ German Research Centre for GeosciencesUniversity of Copenhagen: ResearchArticle . 2015Data sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2015Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2015 . Peer-reviewedData sources: CrossrefProceedings of the National Academy of SciencesArticle . 2015eScholarship - University of CaliforniaArticle . 2015Data sources: eScholarship - University of CaliforniaGFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)Article . 2015Data sources: Bielefeld Academic Search Engine (BASE)Natural Environment Research Council: NERC Open Research ArchiveArticle . 2015Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1073/pnas.1416267112&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen bronze 189 citations 189 popularity Top 1% influence Top 10% impulse Top 1% Powered by BIP!
more_vert Archivio istituziona... arrow_drop_down Fondazione Edmund Mach: IRIS-OpenPubArticle . 2015Full-Text: http://hdl.handle.net/10449/25239Data sources: Bielefeld Academic Search Engine (BASE)University of California: eScholarshipArticle . 2015Full-Text: https://escholarship.org/uc/item/46g0003pData sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2015Data sources: DANS (Data Archiving and Networked Services)Copenhagen University Research Information SystemArticle . 2015Data sources: Copenhagen University Research Information SystemGFZ German Research Centre for GeosciencesArticle . 2015Data sources: GFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesArticle . 2015Data sources: GFZ German Research Centre for GeosciencesUniversity of Copenhagen: ResearchArticle . 2015Data sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2015Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2015 . Peer-reviewedData sources: CrossrefProceedings of the National Academy of SciencesArticle . 2015eScholarship - University of CaliforniaArticle . 2015Data sources: eScholarship - University of CaliforniaGFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)Article . 2015Data sources: Bielefeld Academic Search Engine (BASE)Natural Environment Research Council: NERC Open Research ArchiveArticle . 2015Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1073/pnas.1416267112&type=result"></script>'); --> </script>
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description Publicationkeyboard_double_arrow_right Article , Journal 2018Publisher:IOP Publishing Funded by:NSERCNSERCAuthors: Peter M Lafleur; Elyn R Humphreys;Increased shrub cover on the Arctic tundra is expected to impact ecosystem-atmosphere exchanges of carbon and energy resulting in feedbacks to the climate system, yet few direct measurements of shrub tundra-atmosphere exchanges are available to corroborate expectations. Here we present energy and carbon dioxide (CO _2 ) fluxes measured using the eddy covariance technique over six growing seasons at three closely located tundra sites in Canada’s Low Arctic. The sites are dominated by the tundra shrub Betula glandulosa , but percent cover varies from 17%–60% and average shrub height ranges from 18–59 cm among sites. The site with greatest percent cover and height had greater snow accumulation, but contrary to some expectations, it had similar late-winter albedo and snow melt dates compared to the other two sites. Immediately after snowmelt latent heat fluxes increased more slowly at this site compared to the others. Yet by the end of the growing season there was little difference in cumulative latent heat flux among the sites, suggesting evapotranspiration was not increased with greater shrub cover. In contrast, lower albedo and less soil thaw contributed to greater summer sensible heat flux at the site with greatest shrub cover, resulting in greater total atmospheric heating. Net ecosystem exchange of CO _2 revealed the potential for enhanced carbon cycling rates under greater shrub cover. Spring CO _2 emissions were greatest at the site with greatest percent cover of shrubs, as was summer net uptake of CO _2 . The seasonal net sink for CO _2 was ~2 times larger at the site with the greatest shrub cover compared to the site with the least shrub cover. These results largely agree with expectations that the growing season feedback to the atmosphere arising from shrub expansion in the Arctic has the potential to be negative for CO _2 fluxes but positive for turbulent energy fluxes.
add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1088/1748-9326/aab863&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess Routesgold 39 citations 39 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1088/1748-9326/aab863&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type 2024 Canada, Canada, Denmark, Finland, SwedenPublisher:Springer Science and Business Media LLC Funded by:NSF | LTER: Changing Disturbanc..., AKA | Towards mechanistic under..., NSERC +5 projectsNSF| LTER: Changing Disturbances, Ecological Legacies, and the Future of the Alaskan Boreal Forest ,AKA| Towards mechanistic understanding of reindeer impacts on wetland carbon balance (ReindeerPaths) ,NSERC ,NSF| Collaborative Research: Vegetation And Ecosystem Impacts On Permafrost Vulnerability ,AKA| Land use as a modulator of land cover transitions and the ecosystem–atmosphere carbon balance (LANDMOD) ,AKA| RESILIENCE IN SOCIAL-ECOLOGICAL SYSTEMS IN IN NORTHWEST EURASIA (RISES) ,EC| CHARTER ,NSF| NNA Research: Collaborative Research: Fate of the Caribou: from local knowledge to range-wide dynamics in the changing ArcticLogan T. Berner; Kathleen M. Orndahl; Melissa Rose; Mikkel Tamstorf; Marie F. Arndal; Heather D. Alexander; Elyn R. Humphreys; Michael M. Loranty; Sarah M. Ludwig; Johanna Nyman; Sari Juutinen; Mika Aurela; Konsta Happonen; Juha Mikola; Michelle C. Mack; Mathew R. Vankoughnett; Colleen M. Iversen; Verity G. Salmon; Dedi Yang; Jitendra Kumar; Paul Grogan; Ryan K. Danby; Neal A. Scott; Johan Olofsson; Matthias B. Siewert; Lucas Deschamps; Esther Lévesque; Vincent Maire; Amélie Morneault; Gilles Gauthier; Charles Gignac; Stéphane Boudreau; Anna Gaspard; Alexander Kholodov; M. Syndonia Bret-Harte; Heather E. Greaves; Donald Walker; Fiona M. Gregory; Anders Michelsen; Timo Kumpula; Miguel Villoslada; Henni Ylänne; Miska Luoto; Tarmo Virtanen; Bruce C. Forbes; Norbert Hölzel; Howard Epstein; Ramona J. Heim; Andrew Bunn; Robert M. Holmes; Jacqueline K. Y. Hung; Susan M. Natali; Anna-Maria Virkkala; Scott J. Goetz;AbstractPlant biomass is a fundamental ecosystem attribute that is sensitive to rapid climatic changes occurring in the Arctic. Nevertheless, measuring plant biomass in the Arctic is logistically challenging and resource intensive. Lack of accessible field data hinders efforts to understand the amount, composition, distribution, and changes in plant biomass in these northern ecosystems. Here, we present The Arctic plant aboveground biomass synthesis dataset, which includes field measurements of lichen, bryophyte, herb, shrub, and/or tree aboveground biomass (g m−2) on 2,327 sample plots from 636 field sites in seven countries. We created the synthesis dataset by assembling and harmonizing 32 individual datasets. Aboveground biomass was primarily quantified by harvesting sample plots during mid- to late-summer, though tree and often tall shrub biomass were quantified using surveys and allometric models. Each biomass measurement is associated with metadata including sample date, location, method, data source, and other information. This unique dataset can be leveraged to monitor, map, and model plant biomass across the rapidly warming Arctic.
Natural Resources In... arrow_drop_down Natural Resources Institute Finland: JukuriArticleLicense: CC BYFull-Text: https://jukuri.luke.fi/handle/10024/555088Data sources: Bielefeld Academic Search Engine (BASE)Université du Québec à Trois-Rivières: Dépôt numérique de UQTRArticle . 2024License: CC BYData sources: Bielefeld Academic Search Engine (BASE)HELDA - Digital Repository of the University of HelsinkiArticle . 2024 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiCopenhagen University Research Information SystemArticle . 2024Data sources: Copenhagen University Research Information SystemPublikationer från Umeå universitetArticle . 2024 . Peer-reviewedData sources: Publikationer från Umeå universitetDigitala Vetenskapliga Arkivet - Academic Archive On-lineArticle . 2024 . Peer-reviewedUniversity of Copenhagen: ResearchArticle . 2024Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1038/s41597-024-03139-w&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 4 citations 4 popularity Average influence Average impulse Average Powered by BIP!
more_vert Natural Resources In... arrow_drop_down Natural Resources Institute Finland: JukuriArticleLicense: CC BYFull-Text: https://jukuri.luke.fi/handle/10024/555088Data sources: Bielefeld Academic Search Engine (BASE)Université du Québec à Trois-Rivières: Dépôt numérique de UQTRArticle . 2024License: CC BYData sources: Bielefeld Academic Search Engine (BASE)HELDA - Digital Repository of the University of HelsinkiArticle . 2024 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiCopenhagen University Research Information SystemArticle . 2024Data sources: Copenhagen University Research Information SystemPublikationer från Umeå universitetArticle . 2024 . Peer-reviewedData sources: Publikationer från Umeå universitetDigitala Vetenskapliga Arkivet - Academic Archive On-lineArticle . 2024 . Peer-reviewedUniversity of Copenhagen: ResearchArticle . 2024Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1038/s41597-024-03139-w&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2015Publisher:Wiley Funded by:NSERCNSERCCraig A. Emmerton; Vincent L. St. Louis; Elyn R. Humphreys; John A. Gamon; Joel D. Barker; Gilberto Z. Pastorello;doi: 10.1111/gcb.13064
pmid: 26279166
AbstractHigh Arctic landscapes are expansive and changing rapidly. However, our understanding of their functional responses and potential to mitigate or enhance anthropogenic climate change is limited by few measurements. We collected eddy covariance measurements to quantify the net ecosystem exchange (NEE) of CO2 with polar semidesert and meadow wetland landscapes at the highest latitude location measured to date (82°N). We coupled these rare data with ground and satellite vegetation production measurements (Normalized Difference Vegetation Index; NDVI) to evaluate the effectiveness of upscaling local to regional NEE. During the growing season, the dry polar semidesert landscape was a near‐zero sink of atmospheric CO2 (NEE: −0.3 ± 13.5 g C m−2). A nearby meadow wetland accumulated over 300 times more carbon (NEE: −79.3 ± 20.0 g C m−2) than the polar semidesert landscape, and was similar to meadow wetland NEE at much more southerly latitudes. Polar semidesert NEE was most influenced by moisture, with wetter surface soils resulting in greater soil respiration and CO2 emissions. At the meadow wetland, soil heating enhanced plant growth, which in turn increased CO2 uptake. Our upscaling assessment found that polar semidesert NDVI measured on‐site was low (mean: 0.120–0.157) and similar to satellite measurements (mean: 0.155–0.163). However, weak plant growth resulted in poor satellite NDVI–NEE relationships and created challenges for remotely detecting changes in the cycling of carbon on the polar semidesert landscape. The meadow wetland appeared more suitable to assess plant production and NEE via remote sensing; however, high Arctic wetland extent is constrained by topography to small areas that may be difficult to resolve with large satellite pixels. We predict that until summer precipitation and humidity increases enough to offset poor soil moisture retention, climate‐related changes to productivity on polar semideserts may be restricted.
Global Change Biolog... arrow_drop_down Global Change BiologyArticle . 2015 . Peer-reviewedLicense: Wiley Online Library User AgreementData sources: Crossrefadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eu33 citations 33 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert Global Change Biolog... arrow_drop_down Global Change BiologyArticle . 2015 . Peer-reviewedLicense: Wiley Online Library User AgreementData sources: Crossrefadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type 2022 United States, Italy, United States, Germany, FinlandPublisher:Wiley Funded by:NSF | METHANE AT THE ZERO CURTA..., EC | INTAROS, UKRI | Methane Production in the... +1 projectsNSF| METHANE AT THE ZERO CURTAIN ,EC| INTAROS ,UKRI| Methane Production in the Arctic: Under-recognized Cold Season and Upland Tundra - Arctic Methane Sources-UAMS ,NSF| Multi-decadal year-round CO2 and CH4 fluxes to understand long-term impact of climate change on the Arctic carbon balanceDonatella Zona; Peter M. Lafleur; Koen Hufkens; Beniamino Gioli; Barbara Bailey; George Burba; Eugénie S. Euskirchen; Jennifer D. Watts; Kyle A. Arndt; Mary Farina; John S. Kimball; Martin Heimann; Mathias Göckede; Martijn Pallandt; Torben R. Christensen; Mikhail Mastepanov; Efrén López‐Blanco; Albertus J. Dolman; Roisin Commane; Charles E. Miller; Josh Hashemi; Lars Kutzbach; David Holl; Julia Boike; Christian Wille; Torsten Sachs; Aram Kalhori; Elyn R. Humphreys; Oliver Sonnentag; Gesa Meyer; Gabriel H. Gosselin; Philip Marsh; Walter C. Oechel;AbstractLong‐term atmospheric CO2 concentration records have suggested a reduction in the positive effect of warming on high‐latitude carbon uptake since the 1990s. A variety of mechanisms have been proposed to explain the reduced net carbon sink of northern ecosystems with increased air temperature, including water stress on vegetation and increased respiration over recent decades. However, the lack of consistent long‐term carbon flux and in situ soil moisture data has severely limited our ability to identify the mechanisms responsible for the recent reduced carbon sink strength. In this study, we used a record of nearly 100 site‐years of eddy covariance data from 11 continuous permafrost tundra sites distributed across the circumpolar Arctic to test the temperature (expressed as growing degree days, GDD) responses of gross primary production (GPP), net ecosystem exchange (NEE), and ecosystem respiration (ER) at different periods of the summer (early, peak, and late summer) including dominant tundra vegetation classes (graminoids and mosses, and shrubs). We further tested GPP, NEE, and ER relationships with soil moisture and vapor pressure deficit to identify potential moisture limitations on plant productivity and net carbon exchange. Our results show a decrease in GPP with rising GDD during the peak summer (July) for both vegetation classes, and a significant relationship between the peak summer GPP and soil moisture after statistically controlling for GDD in a partial correlation analysis. These results suggest that tundra ecosystems might not benefit from increased temperature as much as suggested by several terrestrial biosphere models, if decreased soil moisture limits the peak summer plant productivity, reducing the ability of these ecosystems to sequester carbon during the summer.
IRIS Cnr arrow_drop_down GFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)Article . 2023License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of Freiburg: FreiDokArticle . 2023Full-Text: https://freidok.uni-freiburg.de/data/233637Data sources: Bielefeld Academic Search Engine (BASE)HELDA - Digital Repository of the University of HelsinkiArticle . 2023 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiGFZ German Research Centre for GeosciencesArticle . 2023License: CC BYData sources: GFZ German Research Centre for GeosciencesElectronic Publication Information CenterArticle . 2023Data sources: Electronic Publication Information Centeradd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 31 citations 31 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert IRIS Cnr arrow_drop_down GFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)Article . 2023License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of Freiburg: FreiDokArticle . 2023Full-Text: https://freidok.uni-freiburg.de/data/233637Data sources: Bielefeld Academic Search Engine (BASE)HELDA - Digital Repository of the University of HelsinkiArticle . 2023 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiGFZ German Research Centre for GeosciencesArticle . 2023License: CC BYData sources: GFZ German Research Centre for GeosciencesElectronic Publication Information CenterArticle . 2023Data sources: Electronic Publication Information Centeradd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article 2022 United StatesPublisher:American Geophysical Union (AGU) Funded by:NSERC, AKA | Methane uptake by permafr...NSERC ,AKA| Methane uptake by permafrost-affected soils – an underestimated carbon sink in Arctic ecosystems? (MUFFIN)Scott Zolkos; Suzanne E. Tank; Steven V. Kokelj; Robert G. Striegl; Sarah Shakil; Carolina Voigt; Oliver Sonnentag; William L. Quinton; Edward A. G. Schuur; Donatella Zona; Peter M. Lafleur; Ryan C. Sullivan; Masahito Ueyama; David Billesbach; David Cook; Elyn R. Humphreys; Philip Marsh;doi: 10.1029/2022gb007403
AbstractIntensifying permafrost thaw alters carbon cycling by mobilizing large amounts of terrestrial substrate into aquatic ecosystems. Yet, few studies have measured aquatic carbon fluxes and constrained drivers of ecosystem carbon balance across heterogeneous Arctic landscapes. Here, we characterized hydrochemical and landscape controls on fluvial carbon cycling, quantified fluvial carbon fluxes, and estimated fluvial contributions to ecosystem carbon balance across 33 watersheds in four ecoregions in the continuous permafrost zone of the western Canadian Arctic: unglaciated uplands, ice‐rich moraine, and organic‐rich lowlands and till plains. Major ions, stable isotopes, and carbon speciation and fluxes revealed patterns in carbon cycling across ecoregions defined by terrain relief and accumulation of organics. In previously unglaciated mountainous watersheds, bicarbonate dominated carbon export (70% of total) due to chemical weathering of bedrock. In lowland watersheds, where soil organic carbon stores were largest, lateral transport of dissolved organic carbon (50%) and efflux of biotic CO2 (25%) dominated. In watersheds affected by thaw‐induced mass wasting, erosion of ice‐rich tills enhanced chemical weathering and increased particulate carbon fluxes by two orders of magnitude. From an ecosystem carbon balance perspective, fluvial carbon export in watersheds not affected by thaw‐induced wasting was, on average, equivalent to 6%–16% of estimated net ecosystem exchange (NEE). In watersheds affected by thaw‐induced wasting, fluvial carbon export approached 60% of NEE. Because future intensification of thermokarst activity will amplify fluvial carbon export, determining the fate of carbon across diverse northern landscapes is a priority for constraining trajectories of permafrost region ecosystem carbon balance.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 4 citations 4 popularity Average influence Average impulse Average Powered by BIP!
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For further information contact us at helpdesk@openaire.euResearch data keyboard_double_arrow_right Dataset 2024Publisher:NSF Arctic Data Center Berner, Logan T.; Orndahl, Kathleen M.; Rose, Melissa; Tamstorf, Mikkel; Arndal, Marie F.; Alexander, Heather D.; Yang, Dedi; Sistla, Seeta; Humphreys, Elyn R.; Loranty, Michael M.; Ludwig, Sarah M.; Nyman, Johanna; Juutinen, Sari; Aurela, Mika; Happonen, Konsta; Mikola, Juha; Mack, Michelle C.; Vankoughnett, Mathew R.; Iversen, Colleen M.; Salmon, Verity G.; Kumar, Jitendra; Grogan, Paul; Danby, Ryan K.; Scott, Neal A.; Pold, Grace; Olofsson, Johan; Siewert, Matthias B.; Deschamps, Lucas; Lévesque, Esther; Maire, Vincent; Morneault, Amélie; Gauthier, Gilles; Gignac, Charles; Boudreau, Stéphane; Gaspard, Anna; Kholodov, Alexander; Bret-Harte, M. Syndonia; Greaves, Heather E.; Walker, Donald; Ylänne, Henni; Gregory, Fiona M.; Michelsen, Anders; Kumpula, Timo; Villoslada, Miguel; Luoto, Miska; Virtanen, Tarmo; Forbes, Bruce C.; Baillargeon, Natalie; Hölzel, Norbert; Epstein, Howard; Heim, Ramona J.; Bunn, Andrew; Holmes, Robert M.; Hung, Jacqueline K.Y.; Natali, Susan M.; Virkkala, Anna-Maria; Goetz, Scott J.;doi: 10.18739/a2qj78081
Plant biomass is a fundamental ecosystem attribute that is sensitive to rapid climatic changes occurring in the Arctic. Nevertheless, measuring plant biomass in the Arctic is logistically challenging and resource intensive. Lack of accessible field data hinders efforts to understand the amount, composition, distribution, and changes in plant biomass in these northern ecosystems. Here, we present The Arctic Plant Aboveground Biomass Synthesis Dataset, which includes field measurements of lichen, bryophyte, herb, shrub, and/or tree aboveground biomass grams per meter squared (g/m^2) on 2327 sample plots in seven countries. We created the synthesis dataset by assembling and harmonizing 32 individual datasets. Aboveground biomass was primarily quantified by harvesting sample plots during mid- to late-summer, though tree and often tall shrub biomass were quantified using surveys and allometric models. Each biomass measurement is associated with metadata including sample date, location, method, data source, and other information. This unique dataset can be leveraged to monitor, map, and model plant biomass across the rapidly warming Arctic.
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For further information contact us at helpdesk@openaire.eu0 citations 0 popularity Average influence Average impulse Average Powered by BIP!
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For further information contact us at helpdesk@openaire.euResearch data keyboard_double_arrow_right Dataset 2024Publisher:NSF Arctic Data Center Berner, Logan T.; Orndahl, Kathleen M.; Rose, Melissa; Tamstorf, Mikkel; Arndal, Marie F.; Yang, Dedi; Humphreys, Elyn R.; Loranty, Michael M.; Ludwig, Sarah M.; Nyman, Johanna; Juutinen, Sari; Aurela, Mika; Happonen, Konsta; Mikola, Juha; Mack, Michelle C.; Vankoughnett, Mathew R.; Iversen, Colleen M.; Salmon, Verity G.; Kumar, Jitendra; Grogan, Paul; Danby, Ryan K.; Scott, Neal A.; Olofsson, Johan; Siewert, Matthias B.; Deschamps, Lucas; Lévesque, Esther; Maire, Vincent; Morneault, Amélie; Gauthier, Gilles; Gignac, Charles; Boudreau, Stéphane; Gaspard, Anna; Kholodov, Alexander; Bret-Harte, M. Syndonia; Greaves, Heather E.; Walker, Donald; Gregory, Fiona M.; Michelsen, Anders; Kumpula, Timo; Villoslada, Miguel; Ylänne, Henni; Luoto, Miska; Virtanen, Tarmo; Forbes, Bruce C.; Hölzel, Norbert; Epstein, Howard; Heim, Ramona J.; Bunn, Andrew; Holmes, Robert M.; Hung, Jacqueline K.Y.; Natali, Susan M.; Virkkala, Anna-Maria; Goetz, Scott J.;doi: 10.18739/a2k931783
Plant biomass is a fundamental ecosystem attribute that is sensitive to rapid climatic changes occurring in the Arctic. Nevertheless, measuring plant biomass in the Arctic is logistically challenging and resource intensive. Lack of accessible field data hinders efforts to understand the amount, composition, distribution, and changes in plant biomass in these northern ecosystems. Here, we present The Arctic Plant Aboveground Biomass Synthesis Dataset, which includes field measurements of lichen, bryophyte, herb, shrub, and/or tree aboveground biomass grams per meter squared (g/m^2) on 2327 sample plots in seven countries. We created the synthesis dataset by assembling and harmonizing 32 individual datasets. Aboveground biomass was primarily quantified by harvesting sample plots during mid- to late-summer, though tree and often tall shrub biomass were quantified using surveys and allometric models. Each biomass measurement is associated with metadata including sample date, location, method, data source, and other information. This unique dataset can be leveraged to monitor, map, and model plant biomass across the rapidly warming Arctic.
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For further information contact us at helpdesk@openaire.eu0 citations 0 popularity Average influence Average impulse Average Powered by BIP!
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type , Journal 2014Embargo end date: 01 Jan 2014 Netherlands, Denmark, Germany, Switzerland, NorwayPublisher:Copernicus GmbH Funded by:EC | PAGE21, NSERC, NSF | Methane loss from Arctic:... +5 projectsEC| PAGE21 ,NSERC ,NSF| Methane loss from Arctic: towards an annual budget of CH4 emissions from tundra ecosystems across a latitudinal gradient ,NSF| BE/CBC: Biocomplexity Associated with the Response of Tundra Carbon Balance to Warming and Drying Across Multiple Spatial and Temporal Scales ,RCN| Greenhouse gases in the North: from local to regional scale ,NWO| Stability of carbon pools in far east Siberia ,EC| GREENCYCLESII ,NSF| Fire in Northern Alaska: Effect of a Changing Disturbance Regime on a Regional MacrosystemAuthors: Birger Ulf Hansen; Marcin Jackowicz-Korczynski; Torsten Sachs; Peter M. Lafleur; +16 AuthorsBirger Ulf Hansen; Marcin Jackowicz-Korczynski; Torsten Sachs; Peter M. Lafleur; Torben R. Christensen; Torben R. Christensen; Walter C. Oechel; Lars Kutzbach; Adrian V. Rocha; Werner Eugster; Magnus Lund; M. K. van der Molen; Mika Aurela; Thomas Friborg; Frans-Jan W. Parmentier; Frans-Jan W. Parmentier; Elyn Humphreys; Daniel P. Rasse; Mikkel P. Tamstorf; Herbert N. Mbufong;Abstract. This paper aims to assess the spatial variability in the response of CO2 exchange to irradiance across the Arctic tundra during peak season using light response curve (LRC) parameters. This investigation allows us to better understand the future response of Arctic tundra under climatic change. Peak season data were collected during different years (between 1998 and 2010) using the micrometeorological eddy covariance technique from 12 circumpolar Arctic tundra sites, in the range of 64–74° N. The LRCs were generated for 14 days with peak net ecosystem exchange (NEE) using an NEE–irradiance model. Parameters from LRCs represent site-specific traits and characteristics describing the following: (a) NEE at light saturation (Fcsat), (b) dark respiration (Rd), (c) light use efficiency (α), (d) NEE when light is at 1000 μmol m−2 s−1 (Fc1000), (e) potential photosynthesis at light saturation (Psat) and (f) the light compensation point (LCP). Parameterization of LRCs was successful in predicting CO2 flux dynamics across the Arctic tundra. We did not find any trends in LRC parameters across the whole Arctic tundra but there were indications for temperature and latitudinal differences within sub-regions like Russia and Greenland. Together, leaf area index (LAI) and July temperature had a high explanatory power of the variance in assimilation parameters (Fcsat, Fc1000 and Psat, thus illustrating the potential for upscaling CO2 exchange for the whole Arctic tundra. Dark respiration was more variable and less correlated to environmental drivers than were assimilation parameters. This indicates the inherent need to include other parameters such as nutrient availability, substrate quantity and quality in flux monitoring activities.
GFZpublic (German Re... arrow_drop_down https://doi.org/10.5194/bgd-11...Article . 2014 . Peer-reviewedLicense: CC BYData sources: CrossrefGFZ German Research Centre for GeosciencesArticle . 2014Data sources: GFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesArticle . 2014Data sources: GFZ German Research Centre for GeosciencesWageningen Staff PublicationsArticle . 2014License: CC BYData sources: Wageningen Staff PublicationsUniversity of Copenhagen: ResearchArticle . 2014Data sources: Bielefeld Academic Search Engine (BASE)http://dx.doi.org/10.5194/bg-1...Other literature typeData sources: European Union Open Data Portaladd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 24 citations 24 popularity Top 10% influence Average impulse Top 10% Powered by BIP!
more_vert GFZpublic (German Re... arrow_drop_down https://doi.org/10.5194/bgd-11...Article . 2014 . Peer-reviewedLicense: CC BYData sources: CrossrefGFZ German Research Centre for GeosciencesArticle . 2014Data sources: GFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesArticle . 2014Data sources: GFZ German Research Centre for GeosciencesWageningen Staff PublicationsArticle . 2014License: CC BYData sources: Wageningen Staff PublicationsUniversity of Copenhagen: ResearchArticle . 2014Data sources: Bielefeld Academic Search Engine (BASE)http://dx.doi.org/10.5194/bg-1...Other literature typeData sources: European Union Open Data Portaladd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2020 China (People's Republic of), China (People's Republic of), China (People's Republic of), Finland, DenmarkPublisher:IOP Publishing Funded by:NSERC, AKA | Role of upland forest soi..., AKA | Centre of Excellence in A... +3 projectsNSERC ,AKA| Role of upland forest soils in regional methane balance: from catchment to global scales / Consortium: UPFORMET ,AKA| Centre of Excellence in Atmospheric Science From Molecular and Biolocigal processes to The Global Climate ,NSF| LTER: Comparative Study of a Suite of Lakes in Wisconsin ,AKA| Carbon dynamics across Arctic landscape gradients: past, present and future (CAPTURE) / Consortium: CAPTURE ,EC| RINGOPavel Alekseychik; Daniel F. Nadeau; Brian D. Amiro; Vyacheslav Zyrianov; Allison L. Dunn; Manuel Helbig; Manuel Helbig; Mats Nilsson; Elena D. Lapshina; Annalea Lohila; Mika Korkiakoski; Mikaell Ottosson Löfvenius; Silvie Harder; Hiroki Ikawa; Christopher Schulze; Timo Vesala; Elyn Humphreys; Matthias Peichl; William L. Quinton; Nigel T. Roulet; Erin M. Nicholls; Anders Lindroth; Andrej Varlagin; Sean K. Carey; Ian B. Strachan; Richard M. Petrone; Eugénie S. Euskirchen; Lars Kutzbach; Oliver Sonnentag; Masahito Ueyama; Juha-Pekka Tuovinen; Michelle Garneau; Hiroki Iwata; Takeshi Ohta; Trofim C. Maximov; Ankur R. Desai; Alan G. Barr; Anatoly S. Prokushkin; Philip Marsh; Lawrence B. Flanagan; Pierre-Erik Isabelle; Paul A. Moore; Juliya Kurbatova; T. Andrew Black; Eeva-Stiina Tuittila; Mika Aurela; Jinshu Chi; Thomas Friborg; Martin Wilmking; Pierre Taillardat; Jiquan Chen; Benjamin R. K. Runkle; Benjamin R. K. Runkle; Rachhpal S. Jassal; Ivan Mammarella; Jessica Turner; James M. Waddington; Michal Heliasz; Achim Grelle;handle: 10138/321067
Peatlands and forests cover large areas of the boreal biome and are critical for global climate regulation. They also regulate regional climate through heat and water vapour exchange with the atmosphere. Understanding how land-atmosphere interactions in peatlands differ from forests may therefore be crucial for modelling boreal climate system dynamics and for assessing climate benefits of peatland conservation and restoration. To assess the biophysical impacts of peatlands and forests on peak growing season air temperature and humidity, we analysed surface energy fluxes and albedo from 35 peatlands and 37 evergreen needleleaf forests—the dominant boreal forest type—and simulated air temperature and vapour pressure deficit (VPD) over hypothetical homogeneous peatland and forest landscapes. We ran an evapotranspiration model using land surface parameters derived from energy flux observations and coupled an analytical solution for the surface energy balance to an atmospheric boundary layer (ABL) model. We found that peatlands, compared to forests, are characterized by higher growing season albedo, lower aerodynamic conductance, and higher surface conductance for an equivalent VPD. This combination of peatland surface properties results in a ∼20% decrease in afternoon ABL height, a cooling (from 1.7 to 2.5 °C) in afternoon air temperatures, and a decrease in afternoon VPD (from 0.4 to 0.7 kPa) for peatland landscapes compared to forest landscapes. These biophysical climate impacts of peatlands are most pronounced at lower latitudes (∼45°N) and decrease toward the northern limit of the boreal biome (∼70°N). Thus, boreal peatlands have the potential to mitigate the effect of regional climate warming during the growing season. The biophysical climate mitigation potential of peatlands needs to be accounted for when projecting the future climate of the boreal biome, when assessing the climate benefits of conserving pristine boreal peatlands, and when restoring peatlands that have experienced peatland drainage and mining.
Environmental Resear... arrow_drop_down HELDA - Digital Repository of the University of HelsinkiArticle . 2020 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiCopenhagen University Research Information SystemArticle . 2020Data sources: Copenhagen University Research Information SystemUniversity of Copenhagen: ResearchArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 33 citations 33 popularity Top 10% influence Average impulse Top 10% Powered by BIP!
more_vert Environmental Resear... arrow_drop_down HELDA - Digital Repository of the University of HelsinkiArticle . 2020 . Peer-reviewedData sources: HELDA - Digital Repository of the University of HelsinkiCopenhagen University Research Information SystemArticle . 2020Data sources: Copenhagen University Research Information SystemUniversity of Copenhagen: ResearchArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal , Other literature type 2015 Germany, Italy, United States, Italy, Italy, Italy, United States, Denmark, United States, United Kingdom, NetherlandsPublisher:Proceedings of the National Academy of Sciences Publicly fundedFunded by:EC | ICE-ARC, AKA | ICOS - Integrated Carbon ..., NSF | CAREER: Contrasting envir... +6 projectsEC| ICE-ARC ,AKA| ICOS - Integrated Carbon Observation System ,NSF| CAREER: Contrasting environmental controls on regional CO2 and CH4 biogeochemistry-Research and education for placing global change in a regional, local context ,RSF| The development of ecosystem spatial-temporal thermodynamics theory and methods of thermodynamic variables measurement ,AKA| Towards comprehensive understanding of surface layer exchange processes of biogenic volatile organic compounds ,NSERC ,NSF| Methane loss from Arctic: towards an annual budget of CH4 emissions from tundra ecosystems across a latitudinal gradient ,NSF| Measurement and Analysis of Methane Fluxes in a Northern Peatland Ecosystem ,NWO| Long term observation of soil carbon and methane fluxes in Siberian tundra.Ana Meijide; Arjan Hensen; Elmar Veenendaal; Magnus Lund; Magnus Lund; A. J. Dolman; Thomas Friborg; Derrick Y.F. Lai; Tuomas Laurila; Barbara Marcolla; Janne Rinne; Janne Rinne; Pertti J. Martikainen; Lawrence B. Flanagan; Alessandro Cescatti; Christian Bernhofer; Annalea Lohila; Andrej Varlagin; Torben R. Christensen; Torben R. Christensen; Dennis D. Baldocchi; Marcin Jackowicz-Korczynski; Narasinha J. Shurpali; Nigel T. Roulet; Thomas Grünwald; Walter C. Oechel; Juha-Pekka Tuovinen; Ute Skiba; Chiara A. R. Corradi; Gerard Kiely; Shashi B. Verma; Mika Aurela; A.P. Schrier-Uijl; Frans-Jan W. Parmentier; Frans-Jan W. Parmentier; A.M.R. Petrescu; Matteo Sottocornola; Jacobus van Huissteden; Carsten Grüning; Torsten Sachs; Mikhail Mastepanov; Mikhail Mastepanov; Lutz Merbold; Elyn Humphreys; Ankur R. Desai; Jaclyn Hatala Matthes; Timo Vesala; Donatella Zona; Donatella Zona; Mikkel P. Tamstorf;pmid: 25831506
pmc: PMC4403212
Significance Wetlands are unique ecosystems because they are in general sinks for carbon dioxide and sources of methane. Their climate footprint therefore depends on the relative sign and magnitude of the land–atmosphere exchange of these two major greenhouse gases. This work presents a synthesis of simultaneous measurements of carbon dioxide and methane fluxes to assess the radiative forcing of natural wetlands converted to agricultural or forested land. The net climate impact of wetlands is strongly dependent on whether they are natural or managed. Here we show that the conversion of natural wetlands produces a significant increase of the atmospheric radiative forcing. The findings suggest that management plans for these complex ecosystems should carefully account for the potential biogeochemical effects on climate.
Archivio istituziona... arrow_drop_down Fondazione Edmund Mach: IRIS-OpenPubArticle . 2015Full-Text: http://hdl.handle.net/10449/25239Data sources: Bielefeld Academic Search Engine (BASE)University of California: eScholarshipArticle . 2015Full-Text: https://escholarship.org/uc/item/46g0003pData sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2015Data sources: DANS (Data Archiving and Networked Services)Copenhagen University Research Information SystemArticle . 2015Data sources: Copenhagen University Research Information SystemGFZ German Research Centre for GeosciencesArticle . 2015Data sources: GFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesArticle . 2015Data sources: GFZ German Research Centre for GeosciencesUniversity of Copenhagen: ResearchArticle . 2015Data sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2015Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2015 . Peer-reviewedData sources: CrossrefProceedings of the National Academy of SciencesArticle . 2015eScholarship - University of CaliforniaArticle . 2015Data sources: eScholarship - University of CaliforniaGFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)Article . 2015Data sources: Bielefeld Academic Search Engine (BASE)Natural Environment Research Council: NERC Open Research ArchiveArticle . 2015Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1073/pnas.1416267112&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen bronze 189 citations 189 popularity Top 1% influence Top 10% impulse Top 1% Powered by BIP!
more_vert Archivio istituziona... arrow_drop_down Fondazione Edmund Mach: IRIS-OpenPubArticle . 2015Full-Text: http://hdl.handle.net/10449/25239Data sources: Bielefeld Academic Search Engine (BASE)University of California: eScholarshipArticle . 2015Full-Text: https://escholarship.org/uc/item/46g0003pData sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2015Data sources: DANS (Data Archiving and Networked Services)Copenhagen University Research Information SystemArticle . 2015Data sources: Copenhagen University Research Information SystemGFZ German Research Centre for GeosciencesArticle . 2015Data sources: GFZ German Research Centre for GeosciencesGFZ German Research Centre for GeosciencesArticle . 2015Data sources: GFZ German Research Centre for GeosciencesUniversity of Copenhagen: ResearchArticle . 2015Data sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2015Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2015 . Peer-reviewedData sources: CrossrefProceedings of the National Academy of SciencesArticle . 2015eScholarship - University of CaliforniaArticle . 2015Data sources: eScholarship - University of CaliforniaGFZpublic (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)Article . 2015Data sources: Bielefeld Academic Search Engine (BASE)Natural Environment Research Council: NERC Open Research ArchiveArticle . 2015Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1073/pnas.1416267112&type=result"></script>'); --> </script>
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