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Structural and chemical evolution in layered oxide cathodes of lithium-ion batteries revealed by synchrotron techniques

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【作者】 钱冠男汪君洋李泓马紫峰Piero Pianetta李林森禹习谦刘宜晋

【Author】 Guannan Qian;Junyang Wang;Hong Li;Zi-Feng Ma;Piero Pianetta;Linsen Li;Xiqian Yu;Yijin Liu;Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory;Department of Chemical Engineering, Shanghai Electrochemical Energy Device Research Center (SEED), School of Chemistry and Chemical Engineering, Frontiers Science Center for Transformative Molecules, Shanghai Jiao Tong University;Beijing Advanced Innovation Center for Materials Genome Engineering, Key Laboratory for Renewable Energy, Beijing Key Laboratory for New Energy Materials and Devices, Institute of Physics, Chinese Academy of Sciences;Shanghai Jiao Tong University Sichuan Research Institute;

【通讯作者】 李林森;禹习谦;刘宜晋;

【机构】 Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator LaboratoryDepartment of Chemical Engineering, Shanghai Electrochemical Energy Device Research Center (SEED), School of Chemistry and Chemical Engineering, Frontiers Science Center for Transformative Molecules, Shanghai Jiao Tong UniversityBeijing Advanced Innovation Center for Materials Genome Engineering, Key Laboratory for Renewable Energy, Beijing Key Laboratory for New Energy Materials and Devices, Institute of Physics, Chinese Academy of SciencesShanghai Jiao Tong University Sichuan Research Institute

【摘要】 Rechargeable battery technologies have revolutionized electronics,transportation and grid energy storage.Many materials are being researched for battery applications,with layered transition metal oxides(LTMO)the dominating cathode candidate with remarkable electrochemical performance.Yet,daunting challenges persist in the quest for further battery developments targeting lower cost,longer lifespan,improved energy density and enhanced safety.This is,in part,because of the intrinsic complexity of real-world batteries,featuring sophisticated interplay among microstructural,compositional and chemical heterogeneities,which has motivated tremendous research efforts using state-of-the-art analytical te chniques.In this research field,synchrotron techniques have been identified as a suite of effective methods for advanced battery characterization in a non-destructive manner with sensitivities to the lattice,electronic and morphological structures.This article provides a holistic overview of cutting-edge developments in synchrotron-based research on LTMO battery cathode materials.We discuss the complexity and evolution of LTMO’s material properties upon battery operation and review recent synchrotron-based research works that address the frontier challenges and provide novel insights in this field.Finally,we formulate a perspective on future directions of synchrotron-based battery research,involving next-generation X-ray facilities and advanced computational developments.

【Abstract】 Rechargeable battery technologies have revolutionized electronics,transportation and grid energy storage.Many materials are being researched for battery applications,with layered transition metal oxides(LTMO)the dominating cathode candidate with remarkable electrochemical performance.Yet,daunting challenges persist in the quest for further battery developments targeting lower cost,longer lifespan,improved energy density and enhanced safety.This is,in part,because of the intrinsic complexity of real-world batteries,featuring sophisticated interplay among microstructural,compositional and chemical heterogeneities,which has motivated tremendous research efforts using state-of-the-art analytical te chniques.In this research field,synchrotron techniques have been identified as a suite of effective methods for advanced battery characterization in a non-destructive manner with sensitivities to the lattice,electronic and morphological structures.This article provides a holistic overview of cutting-edge developments in synchrotron-based research on LTMO battery cathode materials.We discuss the complexity and evolution of LTMO’s material properties upon battery operation and review recent synchrotron-based research works that address the frontier challenges and provide novel insights in this field.Finally,we formulate a perspective on future directions of synchrotron-based battery research,involving next-generation X-ray facilities and advanced computational developments.

【基金】 supported by the U.S.Department of Energy (DOE),Office of Science,Office of Basic Energy Sciences under Contract No.DE-AC02-76SF00515;supported by the Natural Science Foundation of Beijing (Z20J00042);Newton Advanced Fellowships;supported by a faculty start-up grant of Shanghai Jiao Tong University (to L.S.L.);the National Natural Science Foundation of China (22008154 to L.S.L.);Sichuan Science and Technology Program (2021JDRC0015 to L.S.L.)
  • 【文献出处】 National Science Review ,国家科学评论(英文版) , 编辑部邮箱 ,2022年02期
  • 【分类号】TM912;TB30
  • 【下载频次】40
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