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
孙蔷馥(2000—),女,硕士研究生,研究方向为锂离子电池,E-mail:sunqiangfu22@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:2026-08-19,
纸质出版:2026-09-28
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孙蔷馥, 岑官骏, 乔荣涵, 等. 锂电池百篇论文点评(2026.6.1—2026.7.31)[J]. 储能科学与技术, 2026, 15(9): 3427-3447.
SUN Qiangfu, CEN Guanjun, QIAO Ronghan, et al. Reviews of selected 100 recent papers for lithium batteries (Jun. 1, 2026 to Jul. 31, 2026)[J]. Energy Storage Science and Technology, 2026, 15(9): 3427-3447.
孙蔷馥, 岑官骏, 乔荣涵, 等. 锂电池百篇论文点评(2026.6.1—2026.7.31)[J]. 储能科学与技术, 2026, 15(9): 3427-3447. DOI: 10.19799/j.cnki.2095-4239.2026.0719.
SUN Qiangfu, CEN Guanjun, QIAO Ronghan, et al. Reviews of selected 100 recent papers for lithium batteries (Jun. 1, 2026 to Jul. 31, 2026)[J]. Energy Storage Science and Technology, 2026, 15(9): 3427-3447. DOI: 10.19799/j.cnki.2095-4239.2026.0719.
该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2026年6月1日至2026年7月31日上线的锂电池研究论文,共有7014篇,选择其中100篇加以评论。正极材料的研究集中于高镍三元的掺杂改性和表面包覆,以及其在长循环过程中的结构演变等。负极材料的研究重点包括硅基负极材料制备优化、金属锂负极的制备以及界面构筑与调控。固态电解质的研究主要包括硫化物固态电解质、氯化物固态电解质和聚合物固态电解质的结构设计以及相关性能研究,电解液研究则主要包括不同电解质盐和溶剂对各类电池材料体系适配的研究,以及对新的功能性添加剂的探索。针对固态电池,正极材料的体相改性和表面包覆、复合正极制备与界面修饰、锂金属负极的界面构筑有多篇文献报道。锂硫电池的研究重点是硫正极的结构设计、功能涂层和电解液的改进,固态锂硫电池也引起了广泛注意。电池工艺技术方面的研究包括干法电极、黏结剂设计以及开发新型电池技术等。表征分析涵盖了正极材料的结构相变、锂沉积负极的界面演变等。理论模拟工作包括电解液结构预测以及锂沉积和界面形成机制。
This bimonthly review paper highlights 100 recent published papers on lithium batteries. We searched the Web of Science and found 7014 papers online from Jun. 1
2026 to Jul. 31
2026. 100 of them were selected to be highlighted. The selected papers of cathode materials focus on high-nickel ternary layered oxides
and the effects of doping
interface modifications and structural evolution with prolonged cycling are investigated. For anode materials
silicon-based composite materials are improved by optimized electrode structure. 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 sulfide-based
chloride-based and polymer-based solid-state electrolytes has been extensively studied. Different combination 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 interface to anode/electrolyte interface 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. Research on battery technology includes dry electrode processes
binder design
and the development of new battery technologies. There are a few papers for the characterization techniques of structural phase transition of the cathode materials and the interfacial evolution of lithium deposition. Theoretical papers are mainly related to mechanisms of lithium deposition and interface formation.
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