明胶
电化学储能
材料科学
灵活性(工程)
储能
纳米技术
限制
电化学
生物高聚物
实现(概率)
电解质
生化工程
工艺工程
电极
功率(物理)
机械工程
工程类
超级电容器
化学
物理
物理化学
量子力学
生物化学
统计
数学
复合材料
聚合物
作者
Zhen Du,Fakhar Zaman,Chengming Li,Qingli Zou
标识
DOI:10.1002/aenm.202504024
摘要
Abstract Non−active components, including binders and electrolytes, play equally critical roles alongside active materials in constructing stable electrochemical reaction environments in high−energy−density electrochemical energy storage (EES) systems. Particularly for practical applications, non−active components must not only exhibit multifunctionality but also demonstrate cost−effectiveness and ease of processing. Gelatin, a naturally derived biopolymer with diverse compositional and structural characteristics, presents significant potential to fulfill these stringent requirements. Most notably, gelatin can establish tunable interactions with nanoparticles and ions, thereby offering substantial opportunities for enhancing EES system performance. However, the inherent complexity of gelatin's composition and structure presents considerable challenges in elucidating its underlying mechanisms, consequently limiting the full realization of its potential. In this perspective, the roles and mechanisms of gelatin are systematically analyzed in energy storage systems by examining the diverse interactions it facilitates, summarizing its influence as a non−active component on electrochemical behavior, and identifying promising future research directions. Critical insights are provided for designing advanced non−active materials by synergistically integrating gelatin's dynamic flexibility with cutting−edge innovations to enable next−generation EES systems featuring superior cycling stability and enhanced energy density.
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