Energy Storage Science and Technology ›› 2024, Vol. 13 ›› Issue (11): 4207-4225.doi: 10.19799/j.cnki.2095-4239.2024.0982

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Reviews of selected 100 recent papers for lithium batteries (Aug. 1, 2024 to Sep. 30, 2024)

Qiangfu SUN1(), Guanjun CEN1, Ronghan QIAO1, Jing ZHU1, Junfeng HAO1, Xinxin ZHANG1, Mengyu TIAN2, Zhou JIN2, Yuanjie ZHAN2, Yong YAN2, Liubin BEN1,2, Hailong YU1, Yanyan LIU1, Hong ZHOU3, Xuejie HUANG1,2()   

  1. 1.Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China
    2.Songshan Lake Materials Laboratory, Dongguan 523890, Guangdong, China
    3.National Science Library (Wuhan), Chinese Academy of Sciences, Wuhan 430071, Hubei, China
  • Received:2024-10-21 Online:2024-11-28 Published:2024-11-27
  • Contact: Xuejie HUANG E-mail:sunqiangfu22@mails.ucas.ac.cn;xjhuang@iphy.ac.cn

Abstract:

This bimonthly review paper highlights 100 recent published papers on lithium batteries. We searched the Web of Science and found 6213 papers online from Aug. 1, 2024 to Sep. 30, 2024. 100 of them were selected to be highlighted. The selected papers of cathode materials focus on high-nickel ternary layered oxides and LiCO2, and the effects of doping, interface modifications and their structural evolution with prolonged cycling are investigated. For anode materials, silicon-based composite materials are improved by optimized electrode structure and using new binders to mitigate the effects of volume changes. Efforts have also been devoted to designing composite metal lithium anode and controlling the inhomogeneous plating of lithium. The relation of structure design and performances of chloride-based and polymer-based solid-state electrolytes has been extensively studied. Different combinations of solvents, lithium salts, and functional additives are used for liquid electrolytes to meet the requirements for battery applications. For solid-state batteries, the modification and surface coating of the cathode, the design of composite cathode, the anode/electrolyte interface and 3D anode have been widely investigated. Studies on lithium-sulfur batteries are mainly focused on the structural design of the cathode and the development of functional coating and electrolytes, and solid state lithium-sulfur battery has also drawn large attentions. Dry coating technology for electrodes is developed for Li-ion batteries. Also the safety and recycling of Li-ion batteries are concerned. There are a few papers for the characterization techniques of the structural transition of cathode materials and the interfacial evolution of lithium deposition, while theoretical simulations are devoted to the study of ion transport in solid state electrolytes.

Key words: lithium batteries, cathode material, anode material, solid state electrolyte, battery technology

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