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Elemental-sensitive Detection of the Chemistry in Batteries through Soft X-ray Absorption Spectroscopy and Resonant Inelastic X-ray Scattering

Energy storage has become more and more a limiting factor of today's sustainable energy applications, including electric vehicles and green electric grid based on volatile solar and wind sources. The pressing demand of developing high-performance electrochemical energy storage solutions, i.e., batteries, relies on both fundamental understanding and practical developments from both the academy and industry. The formidable challenge of developing successful battery technology stems from the different requirements for different energy-storage applications. Energy density, power, stability, safety, and cost parameters all have to be balanced in batteries to meet the requirements of different applications. Therefore, multiple battery technologies based on different materials and mechanisms need to be developed and optimized. Incisive tools that could directly probe the chemical reactions in various battery materials are becoming critical to advance the field beyond its conventional trial-and-error approach. Here, we present detailed protocols for soft X-ray absorption spectroscopy (sXAS), soft X-ray emission spectroscopy (sXES), and resonant inelastic X-ray scattering (RIXS) experiments, which are inherently elemental-sensitive probes of the transition-metal 3d and anion 2p states in battery compounds. We provide the details on the experimental techniques and demonstrations revealing the key chemical states in battery materials through these soft X-ray spectroscopy techniques.
- Lawrence Berkeley National Laboratory United States
- Binghamton University United States
- Lawrence Berkeley National Laboratory United States
- Binghamton University United States
- Geballe Laboratory for Advanced Materials
Redox Reactions, Scattering, Issue 134, Electric Power Supplies, Affordable and Clean Energy, Soft X-ray absorption spectroscopy, Psychology, Scattering, Radiation, Li-ion Batteries, Na-ion Batteries, Radiation, X-Rays, Biological Sciences, Energy Storage, 540, 541, Chemistry, X-Ray Absorption Spectroscopy, Biochemistry and cell biology, Cognitive Sciences, Biochemistry and Cell Biology, Resonant Inelastic X-ray Scattering
Redox Reactions, Scattering, Issue 134, Electric Power Supplies, Affordable and Clean Energy, Soft X-ray absorption spectroscopy, Psychology, Scattering, Radiation, Li-ion Batteries, Na-ion Batteries, Radiation, X-Rays, Biological Sciences, Energy Storage, 540, 541, Chemistry, X-Ray Absorption Spectroscopy, Biochemistry and cell biology, Cognitive Sciences, Biochemistry and Cell Biology, Resonant Inelastic X-ray Scattering
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