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A mechanistic study of electrode materials for rechargeable batteries beyond lithium ions by in situ transmission electron microscopy

机译:用原位透射电子显微镜通过锂离子的可充电电池电极材料的机械研究

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摘要

Understanding the fundamental mechanisms of advanced electrode materials at the atomic scale during the electrochemical process is necessary to develop high-performance rechargeable batteries. The complex electrochemical reactions involved in a running battery, which cause intensive structural and morphological changes in electrode materials, have been explored to a certain extent by the use of real-time characterization techniques. In situ transmission electron microscopy (TEM) is one of the most noteworthy diagnostic techniques to understand and monitor dynamic electrochemical processes because of its atomic-scale resolution and real-time monitoring, which can provide information about chemical and physical characteristics. In this review, the current progress in the development of electrode materials using in situ TEM for rechargeable batteries beyond the lithium ion is summarized. First, the various battery designs used for in situ TEM and their challenges are elaborated. Afterward, we systematically summarize the basic science and fundamental reactions including phase transformation and electrode/electrolyte interfaces in electrode materials for heavier alkali ion (sodium, potassium calcium and magnesium) batteries (H-AIBs). Particularly, the real-time insights into three types of electrochemical mechanisms: intercalation, alloying, and conversion reactions are elaborated. Moreover, in situ electrode chemistry in lithium sulfur (Li-S) batteries, alkali-metal oxygen batteries (AOBs) including lithium, sodium and potassium oxygen batteries, and all-solid-state batteries (ASSBs) is also discussed. Finally, we provide a summary and future perspective of in situ TEM in rechargeable batteries along with the most feasible electrode design.
机译:在电化学过程中理解先进电极材料在原子尺度下的基本机制是开发高性能可充电电池的原子尺度。在一定程度上通过使用实时表征技术,在一定程度上探讨了在运行电池中涉及的复杂电化学反应,这导致电极材料的密集结构和形态变化。原位透射电子显微镜(TEM)是理解和监控动态电化学过程的最值得注意的诊断技术之一,因为其原子尺度分辨率和实时监测,可以提供有关化学和物理特性的信息。在该评价中,总结了在锂离子之外的原位TEM的电极材料开发的电流进展。首先,阐述了用于原位TEM的各种电池设计及其挑战。之后,我们系统地总结了基础科学和基本反应,包括用于较重碱金属离子(钠,钙和镁)电池(H-AIB)的电极材料中的相变和电极/电解质界面。特别是,阐述了三种电化学机制的实时见解:嵌入,合金化和转化反应。此外,还讨论了锂硫(LI-S)电池(LI-S)电池中的原位电极化学,包括锂,氧化钾和氧气电池和全固态电池(ASSB)的碱金属氧气电池(AOB)。最后,我们在充电电池中提供了在原位TEM中的摘要和未来的视角以及最可行的电极设计。

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  • 来源
    《Energy & environmental science》 |2021年第5期|2670-2707|共38页
  • 作者单位

    Peking Univ Int Ctr Quantum Mat Sch Phys Beijing 100871 Peoples R China|Peking Univ Electron Microscopy Lab Sch Phys Beijing 100871 Peoples R China|Peking Univ Sch Mat Sci & Engn Beijing 100871 Peoples R China;

    Chinese Acad Sci Inst Geog Sci & Nat Resources Res State Key Lab Resources & Environm Informat Syst Beijing 100871 Peoples R China;

    Peking Univ Sch Mat Sci & Engn Beijing 100871 Peoples R China|Peking Univ Coll Engn Beijing 100871 Peoples R China;

    Peking Univ Coll Engn Beijing 100871 Peoples R China|Natl Univ Sci & Technol NUST Sch Chem & Mat Engn SCME H-12 Islamabad 44000 Pakistan;

    RMIT Univ Sch Engn 124 La Trobe St Melbourne Vic 3001 Australia;

    Qingdao Univ Sci & Technol Key Lab Ecochem Engn Team Eco Chem Proc & Technol Key Lab Opt Elect Sensing & Analyt Chem Life Sci Taishan Scholar Advantage & Characterist Discipli Qingdao 266042 Peoples R China;

    Peking Univ Int Ctr Quantum Mat Sch Phys Beijing 100871 Peoples R China|Peking Univ Electron Microscopy Lab Sch Phys Beijing 100871 Peoples R China;

    Peking Univ Sch Mat Sci & Engn Beijing 100871 Peoples R China|Peking Univ Coll Engn Beijing 100871 Peoples R China;

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