环氧树脂
材料科学
摩擦电效应
固化(化学)
玻璃化转变
复合材料
石油化工
单体
聚合物
胶粘剂
热固性聚合物
炔丙基
动态力学分析
驻极体
造型(装饰)
硅烷
耐化学性
耐热性
化学工程
制作
热稳定性
作者
Yuanxin Duan,Meiying Ge,Jingyi Li,Jia-Tao Miao
标识
DOI:10.1021/acssuschemeng.5c12620
摘要
Triboelectric nanogenerators (TENGs) hold great promise as a novel clean energy source, yet the poor heat resistance of existing polymer triboelectric layers restricts their application in extreme environments, while their petrochemical origins also raise sustainability concerns. Herein, two biobased epoxy monomers (OMPB and OBPB) with varying propargyl ether functionalities were designed and synthesized from lignin derivatives and combined with the liquid curing agent methyl nadic anhydride (MNA) to form biobased epoxy resin systems with good processability and high heat resistance. Specifically, the cured OBPB/MNA resin exhibits a remarkable glass transition temperature (Tg) of 375 °C, which is 180 °C higher than that of the commercial DGEBA resin and represents the highest values among reported lignin-derived epoxy resins. Additionally, it maintains a storage modulus of 1.46 GPa at 350 °C, indicating its potential for high-temperature applications. By systematically investigating the structure–property relationships, the mechanism underlying this high performance was revealed. Benefiting from the exceptional processability, an OM-TENG was fabricated via integrated molding using OBPB/MNA resin as the triboelectric layer, and it exhibited stable electrical output even at 315 °C. This research provides a new class of high-performance, processable epoxy resins, facilitating the scalable fabrication of TENGs for extreme-environment applications.
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