分离器(采油)
材料科学
钢筋
离子
钠
热的
可持续能源
化学工程
纳米技术
复合材料
工程类
化学
冶金
电气工程
有机化学
热力学
可再生能源
物理
作者
Jialin Yang,Xinxin Zhao,Han‐Hao Liu,Junming Cao,Haojie Liang,Yanping Zheng,Yue Liu,Kai-Yang Zhang,Miao Du,Jin‐Zhi Guo,Jingping Zhang,Xing‐Long Wu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-04-08
标识
DOI:10.1021/acsnano.5c02393
摘要
Sustainability serves as a predominant obstacle for advanced energy storage. Herein, we proposed biomass-based separator materials, with favorable flame retardancy, cost-effectiveness, potential sustainability, and excellent electrochemical performance. Specifically, the engineered hydroxyapatite (HAP) molecule incorporates solvent-friendly groups to establish enhanced ion transport channels. The resulting CF@HAP separator induces an orderly decomposition of the electrolyte, which could optimize the electrode/electrolyte interface layer and prevent dendrite growth, making the durable cycling process, let alone its great mechanical properties and potential versatility. The in-depth study clarifies its complicated interfacial chemistry, flame retardancy, and thermal control mechanisms, thus achieving a "thermally closed pore" behavior during the temperature regulation process. Furthermore, the CF@HAP separator achieves complete degradation in the soil naturally within 30 days. As-designed biomass-based separators could comprehensively improve electrochemical performance toward higher levels of reactivity, stability, and postlife self-degradability, further underscoring the promising prospects for sustainable energy storage systems.
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