表面改性
纤维素
极性(国际关系)
位阻效应
嫁接
摩擦电效应
聚合
材料科学
化学工程
高分子
分子
化学
分子工程
侧链
高分子化学
有机化学
纳米技术
能量转换效率
作者
Tianmei Lyu,Chuanhui Wei,Jin He,Yuxin Ma,Yi Luo,Xiaoxuan Fan,Yiwei Ouyang,Xiao Peng,Kai Dong
标识
DOI:10.1016/j.mser.2025.101155
摘要
As an abundant and biocompatible biopolymer, cellulose exhibits great potential in sustainable triboelectric energy harvesting. However, its inherently weak molecular polarity severely limits mechano-electric conversion performance. Herein, we develop a precision molecular polarity engineering strategy that significantly enhances interfacial charge transfer by grafting strongly electron-donating and electron-withdrawing groups onto cellulose macromolecular chains, respectively. This strategy involves a two-step grafting reaction process controlled by steric hindrance effect. Initially, small-molecule intermediates with low steric hindrance are selectively installed onto the highly active C6 hydroxyl groups via a “grafting to” method, establishing well-defined controlled polymerization sites. Subsequently, high-polarity amino/fluoro-containing moieties are precisely introduced through a “grafting from” polymerization, with the grafting degree finely regulated by initiator concentration modulation. Through combined experimental and computational studies, a quantitative structure-property relationship is established, revealing that molecular polarity enhancement can effectively improve interfacial charge transfer efficiency. As a result, the optimized cellulosic triboelectric textile demonstrates a remarkable enhanced charge density of 48.5 μC m −2 with more than four-fold improvement, enabling its successful applications in emergency power systems and self-powered sensors. This work provides a transformative precision molecular polarity engineering strategy for designing next-generation high-performance triboelectric biopolymers. A high-power-output cellulose triboelectric textile integrated with highly strong electron-donating and electron-withdrawing groups is constructed via precise molecular polarity engineering strategy. The two-step grafting process involving steric hindrance-control achieved precise introduction of highly polar functional groups at the highly reactive C6 site of cellulose molecular chains, significantly enhancing the mechano-electric conversion efficiency.
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