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description Publicationkeyboard_double_arrow_right Article , Other literature type , Preprint 2017Publisher:MDPI AG Authors: Wang, Sumeng; Yang, Jianming;Microalgae are recognized as a third generation feedstock for biofuel production due to their rapid growth rates and lignin-free characteristics. In this study, a lipid extracted microalgal biomass residues was used as the raw material to produce isoprene, α-pinene and β-pinene with an engineered E. coli strain. We adopted an optimal sulfuric acid hydrolysis method (1:7 ratio of solid to acid solution, 32% (w/v) concentration of sulfuric acid solution at 90 °C for 90 min) to efficiently convert holocellulose into glucose efficiently (6.37 g/L). Futhermore, we explored a novel detoxification strategy (phosphoric acid/calcium hydroxide) to remove inhibitors and notably acetic acid, furfural and 5-hydroxymethylfurfural (5-HMF) were reduced by 5.32%, different number given later 99.19% and 98.22%, respectively. Finally, the fermentation concentrations of isoprene (223.23 mg/L), α-pinene (382.21 μg/L) and β-pinene (17.4 mg/L) were achieved using the detoxified hydrolysate as the carbon source, equivalent to approximately 86.02%, 90.16% and 88.32% of those produced by the engineered E. coli strain fermented on pure glucose, respectively.
Molecules arrow_drop_down MoleculesOther literature type . 2017License: CC BYFull-Text: http://www.mdpi.com/1420-3049/22/6/960/pdfData sources: Multidisciplinary Digital Publishing Institutehttps://doi.org/10.20944/prepr...Article . 2017 . Peer-reviewedLicense: CC BYData 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.Access RoutesGreen gold 5 citations 5 popularity Top 10% influence Average impulse Average Powered by BIP!
more_vert Molecules arrow_drop_down MoleculesOther literature type . 2017License: CC BYFull-Text: http://www.mdpi.com/1420-3049/22/6/960/pdfData sources: Multidisciplinary Digital Publishing Institutehttps://doi.org/10.20944/prepr...Article . 2017 . Peer-reviewedLicense: CC BYData 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.description Publicationkeyboard_double_arrow_right Article , Other literature type 2013Publisher:MDPI AG Authors: Ximing Wang; Hongwen He;
Fengchun Sun; Xiaokun Sun; +1 AuthorsFengchun Sun
Fengchun Sun in OpenAIREXiming Wang; Hongwen He;
Fengchun Sun; Xiaokun Sun; Henglu Tang;Fengchun Sun
Fengchun Sun in OpenAIREdoi: 10.3390/en6115656
Plug-in hybrid electric vehicles (PHEVs) have a larger battery and can replace a certain amount of conventional fossil fuels with grid electricity, which differs from the traditional hybrid electric vehicles (HEVs). The application of the onboard electrical energy significantly influences the energy utilization efficiency and thus impacts the fuel economy. In this paper, the basic PHEV operation modes are defined as pure electric driving (PED), hybrid driving charge depleting (HDCD) and hybrid driving charge sustaining (HDCS) based on the battery state of charge (SoC) profile. For a plug-in hybrid electric bus (PHEB), three different energy management strategies, which are combined with two or three of the basic operation modes, are put forward and comparatively examined based on simulation models. If some trip information can be approximately known in advance such as the trip distance and the mean power demand, the PED + HDCD + HDCS strategy comprised optimally of the PED mode, the HDCD mode and the HDCS mode would be the best energy management strategy.
Energies arrow_drop_down EnergiesOther literature type . 2013License: CC BYFull-Text: http://www.mdpi.com/1996-1073/6/11/5656/pdfData sources: Multidisciplinary Digital Publishing Instituteadd 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.Access Routesgold 65 citations 65 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert Energies arrow_drop_down EnergiesOther literature type . 2013License: CC BYFull-Text: http://www.mdpi.com/1996-1073/6/11/5656/pdfData sources: Multidisciplinary Digital Publishing Instituteadd 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.description Publicationkeyboard_double_arrow_right Article 2016Publisher:Elsevier BV Authors:
Annalisa Manera; Annalisa Manera
Annalisa Manera in OpenAIRE
Mingjun Wang; Mingjun Wang; Suizheng Qiu; +1 AuthorsMingjun Wang
Mingjun Wang in OpenAIRE
Annalisa Manera; Annalisa Manera
Annalisa Manera in OpenAIRE
Mingjun Wang; Mingjun Wang; Suizheng Qiu; Guanghui Su;Mingjun Wang
Mingjun Wang in OpenAIREAbstract The improvement of thermodynamic efficiency of power plants is of great interest for the whole energy industry. The use of Kalina cycle has a great potential to improve the thermal efficiency of a nuclear power plant. This cycle uses a mixture of ammonia and water as working fluid. In this paper, we discuss the development of an Ammonia-Water mixture Property Code (AWProC). The estimation of the mixture properties are based on the Gibbs free energy functions. The code is verified and validated against experimental data available in the literature and REFPROP code. It is shown that AWProC can accurately estimate the thermodynamic properties of ammonia-water mixtures over a wide range of conditions, including high temperature and pressure regions. The code is then used to investigate the feasibility of applying the Kalina cycle to a typical Pressurizer Water Reactor (PWR) plant as an effective way to improve the plant efficiency. The fundamental of Basic-Kalina (B-K) cycle is described in detail firstly. Then, two modified configurations, Recuperation-Kalina (R-K) and Flash-Kalina (F-K) cycles respectively, are proposed for a typical 1000 MWe PWR. The simulation results indicate that the R-K type cycle can reach about 31.2% efficiency with simple equipment requirements, while the F-K type cycle can reach efficiencies up to about 34.8%, but at the expenses of a slightly more complex design. The present work demonstrates the applicability of the Kalina cycle as a way to improve the thermal efficiency of a nuclear power plant. This concept is meaningful for improving nuclear power plants economic and competitiveness.
Progress in Nuclear ... arrow_drop_down Progress in Nuclear EnergyArticle . 2016License: Elsevier Non-CommercialData sources: BASE (Open Access Aggregator)Progress in Nuclear EnergyArticle . 2016 . Peer-reviewedLicense: Elsevier TDMData 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.Access Routeshybrid 13 citations 13 popularity Top 10% influence Average impulse Top 10% Powered by BIP!
more_vert Progress in Nuclear ... arrow_drop_down Progress in Nuclear EnergyArticle . 2016License: Elsevier Non-CommercialData sources: BASE (Open Access Aggregator)Progress in Nuclear EnergyArticle . 2016 . Peer-reviewedLicense: Elsevier TDMData 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.description Publicationkeyboard_double_arrow_right Article 2020Publisher:MDPI AG Authors:
Syed Afaq Ali Shah; Muhammad Hassan Sayyad;Syed Afaq Ali Shah
Syed Afaq Ali Shah in OpenAIRE
Karim Khan; Karim Khan
Karim Khan in OpenAIRE
Kai Guo; +5 AuthorsKai Guo
Kai Guo in OpenAIRE
Syed Afaq Ali Shah; Muhammad Hassan Sayyad;Syed Afaq Ali Shah
Syed Afaq Ali Shah in OpenAIRE
Karim Khan; Karim Khan
Karim Khan in OpenAIRE
Kai Guo; Fei Shen;Kai Guo
Kai Guo in OpenAIRE
Jinghua Sun; Jinghua Sun
Jinghua Sun in OpenAIRE
Ayesha Khan Tareen; Yubin Gong;Ayesha Khan Tareen
Ayesha Khan Tareen in OpenAIRE
Zhongyi Guo; Zhongyi Guo
Zhongyi Guo in OpenAIREdoi: 10.3390/en13195092
Since its invention in 2009, Perovskite solar cells (PSCs) has attracted great attention because of its low cost, numerous options of efficiency enhancement, ease of manufacturing and high-performance. Within a short span of time, the PSC has already outperformed thin-film and multicrystalline silicon solar cells. A current certified efficiency of 25.2% demonstrates that it has the potential to replace its forerunner generations. However, to commercialize PSCs, some problems need to be addressed. The toxic nature of lead which is the major component of light absorbing layer, and inherited stability issues of fabricated devices are the major hurdles in the industrialization of this technology. Therefore, new researching areas focus on the lead-free metal halide perovskites with analogous optical and photovoltaic performances. Tin being nontoxic and as one of group IV(A) elements, is considered as the most suitable alternate for lead because of their similarities in chemical properties. Efficiencies exceeding 13% have been recorded using Tin halide perovskite based devices. This review summarizes progress made so far in this field, mainly focusing on the stability and photovoltaic performances. Role of different cations and their composition on device performances and stability have been involved and discussed. With a considerable room for enhancement of both efficiency and device stability, different optimized strategies reported so far have also been presented. Finally, the future developing trends and prospects of the PSCs are analyzed and forecasted.
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.Access Routesgold 45 citations 45 popularity Top 1% 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.description Publicationkeyboard_double_arrow_right Article 2022Publisher:MDPI AG Authors:
Leijiao Ge; Leijiao Ge
Leijiao Ge in OpenAIRE
Jun Yan;
Yonghui Sun; Zhongguan Wang;Yonghui Sun
Yonghui Sun in OpenAIREdoi: 10.3390/en15114164
In recent years, the accelerating climate change and intensifying natural disasters have called for more renewable, resilient, and reliable energy from more distributed sources to more diversified consumers, resulting in a pressing need for advanced situational awareness of modern smart distribution systems [...]
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.Access Routesgold 2 citations 2 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.
You have already added works in your ORCID record related to the merged Research product.description Publicationkeyboard_double_arrow_right Article 2023Publisher:Frontiers Media SA Funded by:EC | IntelCompEC| IntelCompAuthors: Papadaki, Lydia;
Stavridis, Charalampos; Koundouri, Phoebe;Stavridis, Charalampos
Stavridis, Charalampos in OpenAIRE
Grypari, Ioanna; +3 AuthorsGrypari, Ioanna
Grypari, Ioanna in OpenAIREPapadaki, Lydia;
Stavridis, Charalampos; Koundouri, Phoebe;Stavridis, Charalampos
Stavridis, Charalampos in OpenAIRE
Grypari, Ioanna; Kazbek, Madina; Papageorgiou, Haris; Theodossiou, Nicolaos;Grypari, Ioanna
Grypari, Ioanna in OpenAIREThe phenomena of climate change transcend all national and regional boundaries. To address this complex challenge, we must determine the areas of the country of interest, in this case, Greece, that have been most adversely affected by climate. Greece is surrounded by water, and a significant part of its GDP is derived from the marine and maritime industries, including tourism. Since the start of the IntelComp project, a Preparatory Living Lab (PLL) has been planned and delivered, feeding into the development of the IntelComp platform and the Living Lab on Climate Change Adaptation. The study's results lead to the conclusion that one of the most important challenges in tackling climate change is the decarbonisation challenge, specifically the shift to renewable energy sources and the investments that must be made. Several EU and national policy frameworks, including the European Green Deal, the Climate Law, the National Long-term Strategy for 2050 (on the Climate and Energy), highlight the decarbonisation as one of the major challenges in the climate change pledge. This will be the primary subject of the IntelComp climate change case study. PLLs also led to the identification of policy questions and useful data sources to aid the IntelComp project's launch. While previous research on co-production has primarily focused on involving citizens through public participation processes in order to gain their support, trust, and insights in structured decision-making processes, our approach opens a new channel for incorporating external knowledge into problem-solving processes. The IntelComp project will aid in policy development by providing pertinent tools co-developed with the final users that will provide insights and analysis in the field of STI (Science, Technology, Innovation) encompassing all of the Energy areas mentioned above.
Frontiers in Environ... arrow_drop_down Frontiers in Environmental EconomicsArticle . 2023 . Peer-reviewedLicense: CC BYData sources: CrossrefOnline Research Database In TechnologyArticle . 2023Data sources: Online Research Database In TechnologyFrontiers in Environmental EconomicsArticle . 2023 . Peer-reviewedData 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.Access RoutesGreen gold 1 citations 1 popularity Average influence Average impulse Average Powered by BIP!
more_vert Frontiers in Environ... arrow_drop_down Frontiers in Environmental EconomicsArticle . 2023 . Peer-reviewedLicense: CC BYData sources: CrossrefOnline Research Database In TechnologyArticle . 2023Data sources: Online Research Database In TechnologyFrontiers in Environmental EconomicsArticle . 2023 . Peer-reviewedData 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.description Publicationkeyboard_double_arrow_right Article , Research , Preprint 2021Embargo end date: 01 Jan 2020Publisher:Springer Science and Business Media LLC Publicly fundedFunded by:EC | AMVA4NewPhysics, EC | INSIGHTS, EC | LHCTOPVLQEC| AMVA4NewPhysics ,EC| INSIGHTS ,EC| LHCTOPVLQSirunyan, A. M.; Tumasyan, A.; Adam, W.; Ambrogi, F.; Bergauer, T.;
Dragicevic, M.; Ero, J.;Dragicevic, M.
Dragicevic, M. in OpenAIRE
Del Valle, A. Escalante; Fruhwirth, R.; Jeitler, M.; Krammer, N.; Lechner, L.; Liko, D.; Madlener, T.; Mikulec, I; Pitters, F. M.; Rad, N.;Del Valle, A. Escalante
Del Valle, A. Escalante in OpenAIRE
Schieck, J.; Schofbeck, R.; Spanring, M.; Templ, S.;Schieck, J.
Schieck, J. in OpenAIRE
Waltenberger, W.; Wulz, C-E; Zarucki, M.; Chekhovsky, V; Litomin, A.;Waltenberger, W.
Waltenberger, W. in OpenAIRE
Makarenko, V; Gonzalez, J. Suarez; Darwish, M. R.; De Wolf, E. A.;Makarenko, V
Makarenko, V in OpenAIRE
Di Croce, D.; Janssen, X.; Kello, T.; Lelek, A.; Pieters, M.; Sfar, H. Rejeb; Van Haevermaet, H.; Van Mechelen, P.; Van Putte, S.;Di Croce, D.
Di Croce, D. in OpenAIRE
Van Remortel, N.; Van Remortel, N.
Van Remortel, N. in OpenAIRE
Blekman, F.; Blekman, F.
Blekman, F. in OpenAIRE
Bols, E. S.; Chhibra, S. S.;Bols, E. S.
Bols, E. S. in OpenAIRE
D'Hondt, J.; D'Hondt, J.
D'Hondt, J. in OpenAIRE
De Clercq, J.; Lontkovskyi, D.; Lowette, S.; Marchesini, I;De Clercq, J.
De Clercq, J. in OpenAIRE
Moortgat, S.; Morton, A.; Python, Q.;Moortgat, S.
Moortgat, S. in OpenAIRE
Tavernier, S.; Van Doninck, W.; Van; Mulders, P.; Beghin, D.; Bilin, B.; Clerbaux, B.; De; Lentdecker, G.; Dorney, B.; Favart, L.; Grebenyuk, A.;Tavernier, S.
Tavernier, S. in OpenAIRE
Kalsi, A. K.; Makarenko, I; Moureaux, L.; Petre, L.; Popov; A.; Postiau, N.;Kalsi, A. K.
Kalsi, A. K. in OpenAIRE
Starling, E.; Thomas, L.; Vander Velde, C.; Vanlaer, P.; Vannerom, D.; Wezenbeek, L.;Starling, E.
Starling, E. in OpenAIRE
Cornelis, T.; Dobur, D.; Gruchala, M.; Khvastunov, I; Niedziela, M.; Roskas, C.;Cornelis, T.
Cornelis, T. in OpenAIRE
Skovpen, K.; Skovpen, K.
Skovpen, K. in OpenAIRE
Tytgat, M.; Verbeke, W.; Vermassen; B.; Vit, M.; Bruno, G.; Bury, F.;Tytgat, M.
Tytgat, M. in OpenAIRE
Caputo, C.; Caputo, C.
Caputo, C. in OpenAIRE
David, P.; David, P.
David, P. in OpenAIRE
Delaere, C.; Delcourt, M.; Donertas, I. S.;Delaere, C.
Delaere, C. in OpenAIRE
Giammanco, A.; Lemaitre, V; Mondal, K.; Prisciandaro, J.; Taliercio, A.; Teklishyn, M.;Giammanco, A.
Giammanco, A. in OpenAIRE
Vischia, P.; Wuyckens, S.; Zobec, J.;Vischia, P.
Vischia, P. in OpenAIRE
Alves, G. A.; Correia Silva, G.; Hensel, C.;Alves, G. A.
Alves, G. A. in OpenAIRE
Moraes, A.; Alda Junior, W. L.; Belchior Batista Das Chagas, E.; Brandao; Malbouisson, H.; Carvalho, W.; Chinellato, J.; Coelho, E.;Moraes, A.
Moraes, A. in OpenAIRE
Da Costa, E. M.; Da Costa, E. M.
Da Costa, E. M. in OpenAIRE
Da Silveira, G. G.; Da Silveira, G. G.
Da Silveira, G. G. in OpenAIRE
De Jesus Damiao, D.; Fonseca De Souza, S.; Martins, J.; Matos Figueiredo, D.; Medina; Jaime, M.; Melo De Almeida, M.;De Jesus Damiao, D.
De Jesus Damiao, D. in OpenAIRE
Mora Herrera, C.; Mora Herrera, C.
Mora Herrera, C. in OpenAIRE
Mundim, L.; Nogima, H.;Mundim, L.
Mundim, L. in OpenAIRE
Rebello Teles, P.; Rebello Teles, P.
Rebello Teles, P. in OpenAIRE
Sanchez Rosas, L. J.; Santoro, A.; Silva Do Amaral, S. M.;Sanchez Rosas, L. J.
Sanchez Rosas, L. J. in OpenAIRE
Sznajder, A.; Thiel, M.;Sznajder, A.
Sznajder, A. in OpenAIRE
Tonelli Manganote, E. J.; Tonelli Manganote, E. J.
Tonelli Manganote, E. J. in OpenAIRE
Torres Da Silva De Araujo, F.; Torres Da Silva De Araujo, F.
Torres Da Silva De Araujo, F. in OpenAIRE
Vilela Pereira, A.; Vilela Pereira, A.
Vilela Pereira, A. in OpenAIRE
Bernardes, C. A.; Bernardes, C. A.
Bernardes, C. A. in OpenAIRE
Calligaris, L.; Fernandez;Calligaris, L.
Calligaris, L. in OpenAIRE
Perez Tomei, T. R.; Gregores, E. M.;Perez Tomei, T. R.
Perez Tomei, T. R. in OpenAIRE
Lemos, D. S.; Mercadante; P. G.;Lemos, D. S.
Lemos, D. S. in OpenAIRE
Novaes, S. F.; Novaes, S. F.
Novaes, S. F. in OpenAIRE
Padula, Sandra S.; Aleksandrov, A.; Antchev, G.; Atanasov, I; Hadjiiska, R.; Iaydjiev, P.; Misheva, M.; Rodozov, M.;Padula, Sandra S.
Padula, Sandra S. in OpenAIRE
Shopova, M.; Sultanov, G.; Bonchev, M.; Dimitrov, A.; Ivanov, T.;Shopova, M.
Shopova, M. in OpenAIRE
Litov, L.; Pavlov, B.; Petkov, P.;Litov, L.
Litov, L. in OpenAIRE
Petrov, A.; Fang, W.; Guo, Q.; Wang, H.; Yuan, L.; Ahmad, M.; Hu, Z.; Wang, Y.;Petrov, A.
Petrov, A. in OpenAIRE
Chapon, E.; Chen; G. M.;Chapon, E.
Chapon, E. in OpenAIRE
Chen, H. S.; Chen, M.; Kapoor, A.; Leggat, D.; Liao, H.;Chen, H. S.
Chen, H. S. in OpenAIRE
Liu, Z.; Liu, Z.
Liu, Z. in OpenAIRE
Sharma, R.; Spiezia, A.;Sharma, R.
Sharma, R. in OpenAIRE
Tao, J.; Thomas-wilsker, J.;
Wang, J.; Zhang, H.; Zhang, S.; Zhao, J.; Agapitos, A.; Ban, Y.; Chen, C.; Huang, Q.; Levin, A.;Wang, J.
Wang, J. in OpenAIRE
Li, Q.;
Lu, M.; Lyu, X.; Mao, Y.; Qian, S. J.; Wang; D.;
Wang, Q.; Xiao, J.;Wang, Q.
Wang, Q. in OpenAIREdoi: 10.1140/epjc/s10052-020-08817-8 , 10.48550/arxiv.2009.01186 , 10.3204/pubdb-2021-01404 , 10.5445/ir/1000133495 , 10.3204/pubdb-2020-03553 , 10.18154/rwth-2021-04402 , 10.18154/rwth-2021-04323
pmid: 33750993
pmc: PMC7921081
handle: 10486/704420 , 10651/61050 , 11588/981266 , 11368/2981217 , 20.500.12960/1096 , 10281/308797 , 10679/8214 , 10067/1775930151162165141 , 11449/210711 , 11492/4967 , 10831/111002 , 11503/974 , 11486/5265 , 11577/3400582 , 11573/1639263 , 11584/420886 , 11567/1050491 , 11568/1134020 , 11589/257781 , 11391/1507393 , 11384/101251 , 11585/853320 , 20.500.11769/526794 , 2158/1297765 , 1854/LU-8702116 , 2318/1841118 , 11579/135374 , 11563/159092 , 10044/1/87583 , 11586/374199 , 11571/1478316
doi: 10.1140/epjc/s10052-020-08817-8 , 10.48550/arxiv.2009.01186 , 10.3204/pubdb-2021-01404 , 10.5445/ir/1000133495 , 10.3204/pubdb-2020-03553 , 10.18154/rwth-2021-04402 , 10.18154/rwth-2021-04323
pmid: 33750993
pmc: PMC7921081
handle: 10486/704420 , 10651/61050 , 11588/981266 , 11368/2981217 , 20.500.12960/1096 , 10281/308797 , 10679/8214 , 10067/1775930151162165141 , 11449/210711 , 11492/4967 , 10831/111002 , 11503/974 , 11486/5265 , 11577/3400582 , 11573/1639263 , 11584/420886 , 11567/1050491 , 11568/1134020 , 11589/257781 , 11391/1507393 , 11384/101251 , 11585/853320 , 20.500.11769/526794 , 2158/1297765 , 1854/LU-8702116 , 2318/1841118 , 11579/135374 , 11563/159092 , 10044/1/87583 , 11586/374199 , 11571/1478316
AbstractThe production of Z boson pairs in proton–proton ($${\mathrm{p}} {\mathrm{p}} $$ p p ) collisions, $${{\mathrm{p}} {\mathrm{p}} \rightarrow ({\mathrm{Z}}/\gamma ^*)({\mathrm{Z}}/\gamma ^*) \rightarrow 2\ell 2\ell '}$$ p p → ( Z / γ ∗ ) ( Z / γ ∗ ) → 2 ℓ 2 ℓ ′ , where $${\ell ,\ell ' = {\mathrm{e}}}$$ ℓ , ℓ ′ = e or $${{\upmu }}$$ μ , is studied at a center-of-mass energy of 13$$\,\text {TeV}$$ TeV with the CMS detector at the CERN LHC. The data sample corresponds to an integrated luminosity of 137$$\,\text {fb}^{-1}$$ fb - 1 , collected during 2016–2018. The $${\mathrm{Z}} {\mathrm{Z}} $$ Z Z production cross section, $$\sigma _{\text {tot}} ({\mathrm{p}} {\mathrm{p}} \rightarrow {\mathrm{Z}} {\mathrm{Z}} ) = 17.4 \pm 0.3 \,\text {(stat)} \pm 0.5 \,\text {(syst)} \pm 0.4 \,\text {(theo)} \pm 0.3 \,\text {(lumi)} \text { pb} $$ σ tot ( p p → Z Z ) = 17.4 ± 0.3 (stat) ± 0.5 (syst) ± 0.4 (theo) ± 0.3 (lumi) pb , measured for events with two pairs of opposite-sign, same-flavor leptons produced in the mass region $${60< m_{\ell ^+\ell ^-} < 120\,\text {GeV}}$$ 60 < m ℓ + ℓ - < 120 GeV is consistent with standard model predictions. Differential cross sections are also measured and agree with theoretical predictions. The invariant mass distribution of the four-lepton system is used to set limits on anomalous $${\mathrm{Z}} {\mathrm{Z}} {\mathrm{Z}} $$ Z Z Z and $${{\mathrm{Z}} {\mathrm{Z}} \gamma }$$ Z Z γ couplings.
Recolector de Cienci... arrow_drop_down Recolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTAPadua research Archive (Archivio istituzionale della ricerca - Università di Padova)Article . 2021License: CC BYArchivio della ricerca- Università di Roma La SapienzaArticle . 2021License: CC BY NC NDData sources: Archivio della ricerca- Università di Roma La SapienzaArchivio della Ricerca - Università di PisaArticle . 2021License: CC BYData sources: Archivio della Ricerca - Università di PisaBelarusian State University: Electronic Library BSUArticle . 2021License: CC BYFull-Text: https://elib.bsu.by/handle/123456789/289295Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021License: CC BYFull-Text: https://bura.brunel.ac.uk/handle/2438/22652Data sources: Bielefeld Academic Search Engine (BASE)University of California: eScholarshipArticle . 2021License: CC BYFull-Text: https://escholarship.org/uc/item/3804229hData sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10044/1/87583Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Full-Text: https://hdl.handle.net/11586/374199Data sources: Bielefeld Academic Search Engine (BASE)Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2009.01186Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)European Physical Journal C: Particles and FieldsArticle . 2021 . 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more_vert Recolector de Cienci... arrow_drop_down Recolector de Ciencia Abierta, RECOLECTAArticle . 2021Data sources: Recolector de Ciencia Abierta, RECOLECTAPadua research Archive (Archivio istituzionale della ricerca - Università di Padova)Article . 2021License: CC BYArchivio della ricerca- Università di Roma La SapienzaArticle . 2021License: CC BY NC NDData sources: Archivio della ricerca- Università di Roma La SapienzaArchivio della Ricerca - Università di PisaArticle . 2021License: CC BYData sources: Archivio della Ricerca - Università di PisaBelarusian State University: Electronic Library BSUArticle . 2021License: CC BYFull-Text: https://elib.bsu.by/handle/123456789/289295Data sources: Bielefeld Academic Search Engine (BASE)Brunel University London: Brunel University Research Archive (BURA)Article . 2021License: CC BYFull-Text: https://bura.brunel.ac.uk/handle/2438/22652Data sources: Bielefeld Academic Search Engine (BASE)University of California: eScholarshipArticle . 2021License: CC BYFull-Text: https://escholarship.org/uc/item/3804229hData sources: Bielefeld Academic Search Engine (BASE)Imperial College London: SpiralArticle . 2020License: CC BYFull-Text: http://hdl.handle.net/10044/1/87583Data sources: Bielefeld Academic Search Engine (BASE)Università degli Studi di Bari Aldo Moro: CINECA IRISArticle . 2021Full-Text: https://hdl.handle.net/11586/374199Data sources: Bielefeld Academic Search Engine (BASE)Caltech Authors (California Institute of Technology)Article . 2021Full-Text: https://arxiv.org/abs/2009.01186Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)European Physical Journal C: Particles and FieldsArticle . 2021 . 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You have already added works in your ORCID record related to the merged Research product.description Publicationkeyboard_double_arrow_right Article 2022Publisher:Elsevier BV Authors: Kunquan Li; Bingkun Min; Boyu Li;The rational design and synthesis of environmental, low-cost and eco-friendly renewable biomass-based carbons are highly desired for the development of high-performance supercapacitors. Herein, a novel amide-enriched synthesis strategy for biomass-based carbon from bayberry core (BC) by in-situ melamine-BC prepolymerization and subsequent NH3 ammonization. The synthesized biomass-based BC carbons were characterized by N2adsorption/desorption, scanning electron microscope, Raman spectroscopy, Fourier transform infrared spectroscopy and X-ray photoelectron spectroscopy. The results showed that the BC carbons by melamine and ammonization co-treatment had both much higher N-doping level (up to 6.43%) and surface area (up to 960 m2 g−1) than the N-free doped carbon. The doped N functional group was mainly dominated by the form of amide-N rather than pyridine-N or quaternary-N. More excitingly, the amide-N content increased with the extension of ammonization time while pyridine-N and quaternary-N went down. The prepared amide-enriched BC carbon via 20 g melamine pre-polymerization and 3 h ammonization treatment delivered an excellent specific capacitance of 259 F g−1, which was 35–72 F g−1 higher than the samples by 1h and 2h NH3 treatment though the latter two had much higher surface area, pyridine and quaternary-N content. The results indicated that the amide-N on the N-doped biomass-based carbon made a great role for enhancing the capacitance, and its promotion to electric double layer capacitance and pseudo-capacitance exceeded that of pyridine and quaternary-N.
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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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.
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You have already added works in your ORCID record related to the merged Research product.description Publicationkeyboard_double_arrow_right Article 2019Publisher:Karlsruhe Publicly fundedFunded by:EC | RI Impact PathwaysEC| RI Impact PathwaysGiancarlo Ferrera; Giancarlo Ferrera; T. P. Watson; Oliver Fischer; Oliver Fischer; S. Fiorendi; C. Bhat; Olivier Leroy; M. K. Yanehsari; V. Arı; Simone Bologna; R. Aleksan; S. Myers; Leonid Rivkin; G. Catalano; S. V. Furuseth; Nathaniel Craig; M. Ramsey-Musolf; M. Merk; H. J. He; J. Proudfoot; X. Jiang; S. Kowalski; H. Chanal; Roderik Bruce; Radja Boughezal; S. Atieh;
D. Liberati; E. Leogrande; Fady Bishara; Fady Bishara; O. Panella; O. Panella; Jiayin Gu; Lance D. Cooley; Alexander Ball; Paolo Castelnovo; A. Blondel; P. Sphicas; F. Dordei; Samuele Mariotto; Samuele Mariotto; I. Bellafont; A. Abada; Peter Braun-Munzinger; K. J. Eskola; J. M. Valet; Maria Paola Lombardo; Maria Paola Lombardo; Ph. Lebrun; S. P. Das; H. J. Yang; Luc Poggioli; Leonel Ferreira; Abhishek M. Iyer; A. Saba; Giovanni Volpini; Giovanni Volpini; Valeria Braccini; Federico Carra; S. J. De Jong; Daniela Bortoletto; Ayres Freitas; Jürgen Reuter; T. Sian; T. Sian; T. Sian; M. Nonis; G. Vorotnikov; V. Yermolchik; S. Jadach; T. Marriott-Dodington; M. Widorski; Jac Perez; Sinan Kuday; Gianluigi Arduini; J. Cervantes; H. Duran Yildiz; Victor P. Goncalves; Anke-Susanne Müller;D. Liberati
D. Liberati in OpenAIRE
G. Rolandi; M. Demarteau; Marumi Kado; Marumi Kado; Michael Syphers; Ryu Sawada; T. Podzorny; Sara Khatibi; Colin Bernet; Yuji Enari; M. Morrone; Y. Dydyshka; Alessandro Polini; Alessandro Polini; J. B. De Vivie De Regie; V. Raginel; M. Panareo; Patrick Draper; Y. Bai; V. Guzey; I. Tapan; D. Woog;G. Rolandi
G. Rolandi in OpenAIRE
A. Crivellin; Andrea Bastianin; M. Zobov; Caterina Vernieri; A. Carvalho; S. Rojas-Torres; N. Pukhaeva; O. Bolukbasi; Guilherme Milhano; M. Mohammadi Najafabadi; Andreas Salzburger; J. Gutierrez; D. K. Hong; A. Apyan; Peter Skands; S. Bertolucci; S. Bertolucci; Masaya Ishino; M. A. Pleier; T. Hoehn; C. Bernini; S. Baird; H. D. Yoo; S. Holleis; Adarsh Pyarelal; Clemens Lange; J. L. Biarrotte; C. Marquet; Wojciech Kotlarski; J. Barranco García; V. Smirnov; Ingo Ruehl; F. Couderc; O. Grimm; Ricardo Gonçalo; Enrico Scomparin; Enrico Scomparin; Giulia Sylva; Oreste Nicrosini; Oreste Nicrosini; Alessandro Tricoli;A. Crivellin
A. Crivellin in OpenAIRE
R. Contino; Hubert Kroha; Y. Zhang; Roberto Ferrari; Roberto Ferrari; Giuseppe Montenero; T. Srivastava; Luca Silvestrini; Marco Andreini; I. Aichinger; Brennan Goddard; C. Andris; P. N. Ratoff; G. Zick; Jorg Wenninger; Andrea Malagoli; M. Moreno Llácer; C. Han; Mauro Chiesa; Livio Fanò; Livio Fanò; S. M. Gascon-Shotkin; B. Strauss; W. Da Silva; Jana Faltova; Berndt Müller; Berndt Müller; M. Kordiaczyńska; André Schöning; Francesco Giffoni; M. Aburaia; Chiu-Chung Young; D. Chanal; Holger Podlech;R. Contino
R. Contino in OpenAIRE
G. Yang; M. Skrzypek; W. M. Yao; M. Podeur; M. I. Besana; Angelo Infantino; B. Riemann; German F. R. Sborlini; E. Bruna; E. Bruna; D. Saez de Jauregui; R. Patterson; Filippo Sala; Andrzej Siodmok; E. Palmieri; Marcello Abbrescia; Marcello Abbrescia; L. Deniau; David Olivier Jamin; V. Baglin; F. Cerutti; Shehu S. AbdusSalam; P. Costa Pinto;G. Yang
G. Yang in OpenAIREhandle: 11588/836674 , 11250/2642528 , 20.500.14243/362389 , 2434/664406 , 10281/232564 , 20.500.11770/330880 , 10447/618977 , 11577/3306671 , 11390/1157812 , 2108/274956 , 11590/354973 , 11573/1306413 , 11392/2411003 , 11567/980502 , 11568/1028169 , 11589/210365 , 11384/82929 , 11585/723356 , 20.500.11769/392026 , 20.500.11767/92753 , 2158/1163225 , 11381/2892922
handle: 11588/836674 , 11250/2642528 , 20.500.14243/362389 , 2434/664406 , 10281/232564 , 20.500.11770/330880 , 10447/618977 , 11577/3306671 , 11390/1157812 , 2108/274956 , 11590/354973 , 11573/1306413 , 11392/2411003 , 11567/980502 , 11568/1028169 , 11589/210365 , 11384/82929 , 11585/723356 , 20.500.11769/392026 , 20.500.11767/92753 , 2158/1163225 , 11381/2892922
European physical journal special topics 228(2), 261-623 (2019). doi:10.1140/epjst/e2019-900045-4 Published by Springer, Berlin ; Heidelberg
CORE (RIOXX-UK Aggre... arrow_drop_down CORE (RIOXX-UK Aggregator)Article . 2019Full-Text: http://livrepository.liverpool.ac.uk/3051785/1/Abada2019_Article_FCC-eeTheLeptonCollider.pdfData sources: CORE (RIOXX-UK Aggregator)BOA - Bicocca Open ArchiveArticle . 2019Full-Text: https://boa.unimib.it/bitstream/10281/232564/1/Abada2019_Article_FCC-eeTheLeptonCollider.pdfData sources: BOA - Bicocca Open ArchiveArchivio istituzionale della ricerca - Università degli Studi di UdineArticle . 2019License: CC BY NC NDArchivio della Ricerca - Università di Roma Tor vergataArticle . 2019License: CC BYData sources: Archivio della Ricerca - Università di Roma Tor vergataArchivio istituzionale della ricerca - Università di FerraraArticle . 2019License: CC BYArchivio della Ricerca - Università di PisaArticle . 2019License: CC BYFull-Text: https://arpi.unipi.it/bitstream/11568/1028169/2/Abada2019_Article_FCC-eeTheLeptonCollider.pdfData sources: Archivio della Ricerca - Università di PisaArchivio Istituzionale della Ricerca - Politecnico di BariArticle . 2019License: CC BYArchivio istituzionale della Ricerca - Scuola Normale SuperioreArticle . 2019License: CC BYSISSA Digital LibraryArticle . 2019License: CC BYFull-Text: https://iris.sissa.it/bitstream/20.500.11767/92753/2/Abada2019_Article_FCC-eeTheLeptonCollider.pdfData sources: SISSA Digital LibraryArchivio della Ricerca - Università di Roma Tor vergataArticle . 2019Full-Text: http://hdl.handle.net/2108/274956Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2019License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Publikationsserver der RWTH Aachen UniversityArticle . 2019Data sources: Publikationsserver der RWTH Aachen UniversityArchivio Istituzionale dell'Università della CalabriaArticle . 2019Data sources: Archivio Istituzionale dell'Università della CalabriaArchivio della Ricerca - Università degli Studi Roma TreArticle . 2019Data sources: Archivio della Ricerca - Università degli Studi Roma TreIRIS - Università degli Studi di CataniaArticle . 2019Data sources: IRIS - Università degli Studi di CataniaFlore (Florence Research Repository)Article . 2019Data sources: Flore (Florence Research Repository)FEDOA - IRIS Università degli Studi Napoli Federico IIArticle . 2019Data sources: FEDOA - IRIS Università degli Studi Napoli Federico IIArchivio della ricerca dell'Università di Parma (CINECA IRIS)Article . 2019Data 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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more_vert CORE (RIOXX-UK Aggre... arrow_drop_down CORE (RIOXX-UK Aggregator)Article . 2019Full-Text: http://livrepository.liverpool.ac.uk/3051785/1/Abada2019_Article_FCC-eeTheLeptonCollider.pdfData sources: CORE (RIOXX-UK Aggregator)BOA - Bicocca Open ArchiveArticle . 2019Full-Text: https://boa.unimib.it/bitstream/10281/232564/1/Abada2019_Article_FCC-eeTheLeptonCollider.pdfData sources: BOA - Bicocca Open ArchiveArchivio istituzionale della ricerca - Università degli Studi di UdineArticle . 2019License: CC BY NC NDArchivio della Ricerca - Università di Roma Tor vergataArticle . 2019License: CC BYData sources: Archivio della Ricerca - Università di Roma Tor vergataArchivio istituzionale della ricerca - Università di FerraraArticle . 2019License: CC BYArchivio della Ricerca - Università di PisaArticle . 2019License: CC BYFull-Text: https://arpi.unipi.it/bitstream/11568/1028169/2/Abada2019_Article_FCC-eeTheLeptonCollider.pdfData sources: Archivio della Ricerca - Università di PisaArchivio Istituzionale della Ricerca - Politecnico di BariArticle . 2019License: CC BYArchivio istituzionale della Ricerca - Scuola Normale SuperioreArticle . 2019License: CC BYSISSA Digital LibraryArticle . 2019License: CC BYFull-Text: https://iris.sissa.it/bitstream/20.500.11767/92753/2/Abada2019_Article_FCC-eeTheLeptonCollider.pdfData sources: SISSA Digital LibraryArchivio della Ricerca - Università di Roma Tor vergataArticle . 2019Full-Text: http://hdl.handle.net/2108/274956Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2019License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Publikationsserver der RWTH Aachen UniversityArticle . 2019Data sources: Publikationsserver der RWTH Aachen UniversityArchivio Istituzionale dell'Università della CalabriaArticle . 2019Data sources: Archivio Istituzionale dell'Università della CalabriaArchivio della Ricerca - Università degli Studi Roma TreArticle . 2019Data sources: Archivio della Ricerca - Università degli Studi Roma TreIRIS - Università degli Studi di CataniaArticle . 2019Data sources: IRIS - Università degli Studi di CataniaFlore (Florence Research Repository)Article . 2019Data sources: Flore (Florence Research Repository)FEDOA - IRIS Università degli Studi Napoli Federico IIArticle . 2019Data sources: FEDOA - IRIS Università degli Studi Napoli Federico IIArchivio della ricerca dell'Università di Parma (CINECA IRIS)Article . 2019Data 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.description Publicationkeyboard_double_arrow_right Article 2024Publisher:Elsevier BV Authors: Li Zhang;
Jianhui Ruan; Zhe Zhang; Ziyu Qin; +4 AuthorsJianhui Ruan
Jianhui Ruan in OpenAIRELi Zhang;
Jianhui Ruan; Zhe Zhang; Ziyu Qin; Zhongyi Lei; Bofeng Cai; Shouyang Wang; Ling Tang;Jianhui Ruan
Jianhui Ruan in OpenAIRESummary: Chinese cities need independent but synergetic dual-carbon abatement roadmaps to mitigate climate change and achieve carbon neutrality. Using source-level data, we develop a time-series, full-scale emission inventory for all Chinese cities from 2005 to 2020, exploring associated heterogeneous and homogeneous patterns. We find that 31% of cities have had a significant carbon emission peak, with the main driver being carbon intensity reductions through efficiency gains and structural improvements. Despite discrepant emission levels and socioeconomic determinants, a uniform trajectory in emission changes exists across cities via four emission phases: growth of 8%–9% annually (95% confidence interval) before peaking; plateau and decline by 9%–13% for 5–7 years; and plain with slower declines. We project that if cities follow their early-peaked counterparts’ mitigation pathways, China will reach a carbon peak in 2026 at 13 Gt and carbon neutrality during 2051–2058, revealing the feasibility of Chinese climate goals and the importance of long-reaching, city-targeted planning. Science for society: China established its dual-carbon goals to achieve a carbon peak before 2030 and carbon neutrality by 2060. It is important for cities to identify their distinctive patterns and define individual dual-carbon roadmaps to achieve carbon neutrality in China. In this study, we conduct a carbon inventory for all Chinese cities from 2005 to 2020 to quantitatively define the emission phases in the process of carbon peak. We find that 31% of cities have had a significant carbon emission peak, with the main driver being carbon intensity reductions. A uniform trajectory in emission changes exists across cities, despite significant differences in emission levels and socioeconomic determinants. We project that if cities follow their early-peaked counterparts’ mitigation pathways, China could achieve its climate change goals ahead of the policy deadlines.
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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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