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Architectural Engineering Achieves High-Performance Alloying Anodes for Lithium and Sodium Ion Batteries

期刊

SMALL
卷 17, 期 19, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202005248

关键词

alloying anodes; energy storage; lithium‐ ion batteries; sodium‐ ion batteries; structural engineering

资金

  1. National Natural Science Foundation of China [51772116, 51972132, 51872277, U1910210, 21605136]
  2. Program for HUST Academic Frontier Youth Team [2016QYTD04]
  3. Dalian National Laboratory For Clean Energy (DNL) Cooperation Fund, the CAS [DNL 180310]
  4. Fundamental Research Funds for the Central Universities [Wk2060140026]

向作者/读者索取更多资源

Efforts have been dedicated to developing high-performance electrochemical energy storage devices, especially in the development of high-energy-density LIBs and SIBs. However, challenges such as severe pulverization and rapid capacity decay still exist in anode materials based on alloying storage mechanisms, despite advances in materials and electrode structures.
Tremendous efforts have been dedicated to the development of high-performance electrochemical energy storage devices. The development of lithium- and sodium-ion batteries (LIBs and SIBs) with high energy densities is urgently needed to meet the growing demands for portable electronic devices, electric vehicles, and large-scale smart grids. Anode materials with high theoretical capacities that are based on alloying storage mechanisms are at the forefront of research geared towards high-energy-density LIBs or SIBs. However, they often suffer from severe pulverization and rapid capacity decay due to their huge volume change upon cycling. So far, a wide variety of advanced materials and electrode structures are developed to improve the long-term cyclability of alloying-type materials. This review provides fundamentals of anti-pulverization and cutting-edge concepts that aim to achieve high-performance alloying anodes for LIBs/SIBs from the viewpoint of architectural engineering. The recent progress on the effective strategies of nanostructuring, incorporation of carbon, intermetallics design, and binder engineering is systematically summarized. After that, the relationship between architectural design and electrochemical performance as well as the related charge-storage mechanisms is discussed. Finally, challenges and perspectives of alloying-type anode materials for further development in LIB/SIB applications are proposed.

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