材料科学
弹性体
深共晶溶剂
复合材料
极限抗拉强度
丁腈橡胶
木质素
天然橡胶
共聚物
腈
热稳定性
硫化
磨损(机械)
聚合物
草酸
抗撕裂性
石油化工
原材料
热塑性弹性体
化学工程
溶剂
延伸率
介电弹性体
聚二甲基硅氧烷
织物
作者
Shi Liu,Conghui Mi,Zhihan Tong,Yongzhuang Liu,Shuo Dou,Yuan Liu,Hongcai Lu,Jiajun Liu,Jinsong Sun,Qinqin Xia,Haipeng Yu
摘要
ABSTRACT Achieving renewable, high‐performance elastomers remains a key goal of green materials science. Here, we report a high‐performance and recyclable elastomer produced directly from industrial Kraft lignin through a one‐pot in situ graft copolymerization strategy. A deep eutectic solvent composed of oxalic acid and 1,6‐hexanediol simultaneously dissolves lignin, provides flexible chains, and drives catalyst‐free esterification at 110°C, constructing an interpenetrating rigid–flexible network that incorporates 50–75 wt.% lignin. The optimal elastomer delivers a tensile strength of 12.0 MPa, 878% elongation, and 85.1 MJ m − 3 fracture energy, rivaling or exceeding petroleum‐derived nitrile butadiene rubber (3.1 MPa, 750% elongation and 11.0 MJ m − 3 ). It also offers a low dielectric constant, high electrical insulation, superior oil and abrasion resistance, efficient photothermal conversion, and infrared‐induced self‐healing. The material can be repeatedly reprocessed, enabling closed‐loop recycling. Converting an abundant lignin by‐product into a value‐added elastomer thus provides a scalable route to eco‐materials with broad application potential.
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