材料科学
复合材料
韧性
断裂韧性
复合数
极限抗拉强度
聚二甲基硅氧烷
微观结构
耐久性
压阻效应
断裂力学
机械容积
图层(电子)
响应度
间断(语言学)
标度系数
压力(语言学)
基质(化学分析)
弹性体
拉伸试验
断裂(地质)
工作(物理)
应力-应变曲线
脆性
研磨
作者
Xianfeng Jin,Bo Zhou,Rui Cao,Xiao He,Ziyi Guo,H B Wu,Jinyu Zhou,Jiachi Zhang,Zhaofeng Wang
摘要
ABSTRACT Polydimethylsiloxane confers stretchability, enhanced brightness, mechanical responsivity and self‐charging capability to mechanoluminescence materials, yet its intrinsic low toughness and crack resistance pose a major obstacle to the practical application of ML devices. Herein, high‐toughness silicone‐rubber layers were introduced to slice the ZnS:Cu@Al 2 O 3 /PDMS matrix into a multilayer architecture that mimics the hinged microstructure of clam. The modified composite exhibits a dramatic enhancement in stretchability, with fracture strain increasing from approximately 100% to 500%. This improvement is accompanied by more than a four‐fold boost in ultimate ML intensity, along with sustained durability demonstrated over 30 000 cycles at the tensile limit. The reduced layer thickness and suppressed crack propagation by the high‐toughness silicone‐rubber interlayer raise toughness from 0.95 to 4.93 MJ/m 3 . This work provides an effective strategy for enhancing the performance of PDMS‐based flexible ML composites, advancing their practicality and offering new insights for applications in stress visualization, intelligent information display, and mechanics sensing.
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