Kuang Qingxia, Feng Shouhua, Yang Ming
State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, Jilin University, Changchun 130012, China.
ACS Appl Mater Interfaces. 2024 Oct 16;16(41):56051-56062. doi: 10.1021/acsami.4c10381. Epub 2024 Oct 2.
Aramid nanofibers (ANFs), with attractive mechanical and thermal properties, have attracted much attention as key building units for the design of high-performance composite materials. Although great progress has been made, the potential of ANFs as fibrous protein mimetics for controlling the growth of inorganic materials has not been fully revealed, which is critical for avoiding phase separation associated with typical solution blending. In this work, we show that ANFs could template the oriented growth of β-FeOOH nanowhiskers, which enables the synthesis of ANFs/β-FeOOH hybrids as composite coatings for polypropylene (PP) separators in Li-S batteries. The modified PP separator exhibits enhanced mechanical properties, heightened thermal performance, optimized electrolyte wettability, and improved ion conductivity, leading to superior electrochemical properties, including high initial specific capacity, better rate capability, and long cycling stability, which are superior to those of the commercial PP separators. Importantly, the addition of β-FeOOH to ANFs could further contribute to the suppression of lithium polysulfide shuttling by chemical immobilization, inhibition of the growth of lithium dendrites because of the intrinsic high modulus and hardness, and promotion of reaction dynamics due to the catalytic effect. We believe that our work may provide a potent biomimetic pathway for the development of advanced battery separators based on ANFs.
芳纶纳米纤维(ANFs)具有引人注目的机械和热性能,作为高性能复合材料设计的关键构建单元已备受关注。尽管已取得很大进展,但ANFs作为控制无机材料生长的纤维状蛋白质模拟物的潜力尚未得到充分揭示,这对于避免与典型溶液共混相关的相分离至关重要。在这项工作中,我们表明ANFs可以模板化β-FeOOH纳米晶须的定向生长,这使得能够合成ANFs/β-FeOOH杂化物作为锂硫电池中聚丙烯(PP)隔膜的复合涂层。改性后的PP隔膜表现出增强的机械性能、提高的热性能、优化的电解质润湿性和改善的离子导电性,从而带来优异的电化学性能,包括高初始比容量、更好的倍率性能和长循环稳定性,这些均优于商业PP隔膜。重要的是,向ANFs中添加β-FeOOH可通过化学固定进一步抑制多硫化锂穿梭,由于其固有的高模量和硬度抑制锂枝晶生长,并因催化作用促进反应动力学。我们相信,我们的工作可能为基于ANFs的先进电池隔膜开发提供一条有力的仿生途径。