金属锂
锂(药物)
筛子(范畴论)
电池(电)
枝晶(数学)
分子筛
材料科学
膜
锂电池
化学工程
化学
无机化学
纳米技术
离子
有机化学
工程类
数学
物理
催化作用
生物化学
医学
热力学
内科学
功率(物理)
几何学
组合数学
离子键合
作者
Suyang Wang,Peng Wang,Yingying Deng,Fei Sha,Ping Zhao,Jun Cao,Jie Shen,Qi Sun,Jiao‐Jing Shao,Yuanyu Wang
标识
DOI:10.1016/j.jcis.2024.08.087
摘要
Uneven lithium deposition poses a primary challenge for lithium-ion batteries, as it often triggers the growth of lithium dendrites, thereby significantly compromising battery performance and potentially giving rise to safety concerns. Therefore, the high level of safety must be guaranteed to achieve the large-scale application of battery energy storage systems. Here, we present a novel separator design achieved by incorporating a two-dimensional A-type molecular sieve coating onto the polypropylene separator surface, which functions as an effective lithium ion redistribution layer. The results demonstrated that even after undergoing 1000 cycles, the cell equipped with a two-dimensional A-type molecular sieve-Polypropylene (2D-A-PP) separator still maintains an impressive capacity retention rate of 70 %. In contrast, cells equipped with Polypropylene (PP) separators exhibit capacity retention rates below 50 % after only 500 cycles. Additionally, the incorporation of a two-dimensional molecular sieve enhances the mechanical properties of the PP separator, thereby bolstering battery safety. This study proposes a novel concept for the design of lithium-ion battery separator materials, offering a fresh perspective on the development of separators with exceptional thermal stability, enhanced porosity, superior electrolyte affinity, and effective inhibition of lithium dendrite formation.
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