{"title":"储能化学:高性能超级电容器的原子和电子基本认识见解","authors":"Thanigai Arul Kumaravelu, Ramana Ramya Jayapalan, Han-Wei Chang, Asokan Kandasami, Lionel Vayssieres, Chung-Li Dong","doi":"10.1063/5.0203665","DOIUrl":null,"url":null,"abstract":"The scarcity of fuels, high pollution levels, climate change, and other major environmental issues are critical challenges that modern societies are facing, mostly originating from fossil fuels-based economies. These challenges can be addressed by developing green, eco-friendly, inexpensive energy sources and energy storage devices. Electrochemical energy storage materials possess high capacitance and superior power density. To engineer highly efficient next-generation electrochemical energy storage devices, the mechanisms of electrochemical reactions and redox behavior must be probed in operational environments. They can be studied by investigating atomic and electronic structures using in situ x-ray absorption spectroscopy (XAS) analysis. Such a technique has attracted substantial research and development interest in the field of energy science for over a decade. The mechanisms of charge/discharge, carrier transport, and ion intercalation/deintercalation can be elucidated. Supercapacitors generally store energy by two specific mechanisms—pseudocapacitance and electrochemical double-layer capacitance. In situ XAS is a powerful tool for probing and understanding these mechanisms. In this Review, both soft and hard x rays are used for the in situ XAS analysis of various representative electrochemical energy storage systems. This Review also showcases some of the highly efficient energy and power density candidates. Furthermore, the importance of synchrotron-based x-ray spectroscopy characterization techniques is enlightened. The impact of the electronic structure, local atomic structure, and electronically active elements/sites of the typical electrochemical energy storage candidates in operational conditions is elucidated. Regarding electrochemical energy storage mechanisms in their respective working environments, the unknown valence states and reversible/irreversible nature of elements, local hybridization, delocalized d-electrons spin states, participation of coordination shells, disorder, and faradaic/non-faradaic behavior are thoroughly discussed. Finally, the future direction of in situ XAS analysis combined with spatial chemical mapping from operando scanning transmission x-ray microscopy and other emerging characterization techniques is presented and discussed.","PeriodicalId":8200,"journal":{"name":"Applied physics reviews","volume":"33 1","pages":""},"PeriodicalIF":11.9000,"publicationDate":"2024-09-17","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Energy storage chemistry: Atomic and electronic fundamental understanding insights for high-performance supercapacitors\",\"authors\":\"Thanigai Arul Kumaravelu, Ramana Ramya Jayapalan, Han-Wei Chang, Asokan Kandasami, Lionel Vayssieres, Chung-Li Dong\",\"doi\":\"10.1063/5.0203665\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"The scarcity of fuels, high pollution levels, climate change, and other major environmental issues are critical challenges that modern societies are facing, mostly originating from fossil fuels-based economies. 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引用次数: 0
摘要
燃料稀缺、污染严重、气候变化和其他重大环境问题是现代社会面临的严峻挑战,而这些挑战大多源自以化石燃料为基础的经济。这些挑战可以通过开发绿色、环保、廉价的能源和储能设备来解决。电化学储能材料具有高电容和卓越的功率密度。要设计出高效的下一代电化学储能装置,就必须在工作环境中探究电化学反应和氧化还原行为的机理。可以通过使用原位 X 射线吸收光谱(XAS)分析来研究原子和电子结构。十多年来,这种技术在能源科学领域吸引了大量的研发兴趣。充放电、载流子传输和离子插层/脱插层的机制都可以得到阐明。超级电容器一般通过伪电容和电化学双层电容这两种特定机制储存能量。原位 XAS 是探测和了解这些机制的有力工具。在本综述中,软X射线和硬X射线都被用于对各种具有代表性的电化学储能系统进行原位XAS分析。本综述还展示了一些高效能量和功率密度的候选产品。此外,还介绍了基于同步辐射的 X 射线光谱表征技术的重要性。本综述阐明了典型电化学储能候选系统的电子结构、局部原子结构和电子活性元素/位点在运行条件下的影响。关于其各自工作环境中的电化学储能机制,深入讨论了未知价态和元素的可逆/不可逆性质、局部杂化、脱局域 d 电子自旋态、配位层的参与、无序以及远动能/非远动能行为。最后,介绍并讨论了原位 XAS 分析与操作扫描透射 X 射线显微镜的空间化学图谱及其他新兴表征技术相结合的未来发展方向。
Energy storage chemistry: Atomic and electronic fundamental understanding insights for high-performance supercapacitors
The scarcity of fuels, high pollution levels, climate change, and other major environmental issues are critical challenges that modern societies are facing, mostly originating from fossil fuels-based economies. These challenges can be addressed by developing green, eco-friendly, inexpensive energy sources and energy storage devices. Electrochemical energy storage materials possess high capacitance and superior power density. To engineer highly efficient next-generation electrochemical energy storage devices, the mechanisms of electrochemical reactions and redox behavior must be probed in operational environments. They can be studied by investigating atomic and electronic structures using in situ x-ray absorption spectroscopy (XAS) analysis. Such a technique has attracted substantial research and development interest in the field of energy science for over a decade. The mechanisms of charge/discharge, carrier transport, and ion intercalation/deintercalation can be elucidated. Supercapacitors generally store energy by two specific mechanisms—pseudocapacitance and electrochemical double-layer capacitance. In situ XAS is a powerful tool for probing and understanding these mechanisms. In this Review, both soft and hard x rays are used for the in situ XAS analysis of various representative electrochemical energy storage systems. This Review also showcases some of the highly efficient energy and power density candidates. Furthermore, the importance of synchrotron-based x-ray spectroscopy characterization techniques is enlightened. The impact of the electronic structure, local atomic structure, and electronically active elements/sites of the typical electrochemical energy storage candidates in operational conditions is elucidated. Regarding electrochemical energy storage mechanisms in their respective working environments, the unknown valence states and reversible/irreversible nature of elements, local hybridization, delocalized d-electrons spin states, participation of coordination shells, disorder, and faradaic/non-faradaic behavior are thoroughly discussed. Finally, the future direction of in situ XAS analysis combined with spatial chemical mapping from operando scanning transmission x-ray microscopy and other emerging characterization techniques is presented and discussed.
期刊介绍:
Applied Physics Reviews (APR) is a journal featuring articles on critical topics in experimental or theoretical research in applied physics and applications of physics to other scientific and engineering branches. The publication includes two main types of articles:
Original Research: These articles report on high-quality, novel research studies that are of significant interest to the applied physics community.
Reviews: Review articles in APR can either be authoritative and comprehensive assessments of established areas of applied physics or short, timely reviews of recent advances in established fields or emerging areas of applied physics.