1.中国科学院物理研究所,北京 100190
2.松山湖材料实验室,广东 东莞 523890
3.中国科学院武汉文献情报中心,湖北 武汉 430071
郑博文(2002—),男,硕士研究生,研究方向为固态电池,E-mail:zhengbowen24@mails.ucas.ac.cn;
黄学杰,研究员,研究方向为锂二次电池及关键材料,E-mail:xjhuang@iphy. ac.cn。
收稿:2026-03-08,
纸质出版:2026-03-28
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郑博文, 孙蔷馥, 岑官骏, 等. 锂电池百篇论文点评(2025.12.28—2026.01.28)[J]. 储能科学与技术, 2026, 15(3): 1134-1154.
ZHENG Bowen, SUN Qiangfu, CEN Guanjun, et al. Reviews of selected 100 recent papers for lithium batteries (Dec. 28, 2025 to Jan. 28, 2026)[J]. Energy Storage Science and Technology, 2026, 15(3): 1134-1154.
郑博文, 孙蔷馥, 岑官骏, 等. 锂电池百篇论文点评(2025.12.28—2026.01.28)[J]. 储能科学与技术, 2026, 15(3): 1134-1154. DOI: 10.19799/j.cnki.2095-4239.2026.0193.
ZHENG Bowen, SUN Qiangfu, CEN Guanjun, et al. Reviews of selected 100 recent papers for lithium batteries (Dec. 28, 2025 to Jan. 28, 2026)[J]. Energy Storage Science and Technology, 2026, 15(3): 1134-1154. DOI: 10.19799/j.cnki.2095-4239.2026.0193.
本文是一篇近两个月的锂电池文献评述,以“lithium”和“batter*”为关键词检索了Web of Science从2025年12月28日至2026年1月28日上线的锂电池研究论文,共有6522篇,选择其中100篇加以评论。层状正极材料的研究集中在高镍三元材料、钴酸锂和富锂相材料,改进方法有表面包覆、合成条件及前驱体优化等。负极材料的研究集中在硅颗粒的包覆和金属锂负极的界面层方面。固态电解质方面研究了硫化物固态电解质、氧化物固态电解质、聚合物与氧化物固体电解质复合材料的制备和性能关系。液态电解液相关工作包括适应高电压正极材料,提升电池安全性及金属锂负极循环性能、石墨负极电池性能提升的添加剂与溶剂等。关于固态电池,界面涂层、双层电解质结构、锂界面枝晶及副反应抑制的相关论文有多篇,电池技术研究还包括液态锂硫电池正极设计等。表征分析涉及正极材料循环中的结构变化、电池热失控、硫化物电解质的电化学与化学稳定性等方面。理论模拟方面重点关注了电解液组分优化、电池老化性能和热失控行为预测等。
This bimonthly review paper summarizes 100 recent research articles on lithium batteries
selected from 6522 publications retrieved via Web of Science between Dec 28
2025 and Jan 28
2026 using keywords "lithium" and "batter*". Layered
cathode materials
including high-nickel ternary layered oxides
LiNiO
2
LiCoO
2
and Li-rich oxides have been improved by surface coating and optimizing the precursors and synthesis conditions. Research on silicon based anode materials foucus on the surface coating techniques and design of composite material
while the interfacial phase growth analyses of metallic lithium anodes were well down. Sulfide
oxide
and polymer-ceramic composite solid-state electrolytes were widely investigated and the influences of preparations on properties. Liquid electrolyte with new additives/solvents were proposed for enhancing its compatibility with high-voltage cathode
the safety of battery
and the performances of lithium and graphite anodes. For all-solid-state batteries
large attentions were drawn to the interface coating design
bilayer electrolyte architectures
and to suppress lithium dendrites and side reactions. Cathode design for liquid lithium-sulfur battery was also studied. Characterizations on the structural evolution in cathode materials during cycling
the thermal runaway behavior of batteries
and electrochemical/chemical stability of sulfide electrolytes were presented. Theoretical works include the optimization of electrolyte components
the prediction of aging and modeling of the thermal runaway behaviours of Li-ion batteries.
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