材料科学
复合材料
瞬态(计算机编程)
复合数
热的
联轴节(管道)
压缩(物理)
可靠性(半导体)
复合材料层合板
残余应力
热能
压力(语言学)
机械能
残余物
残余强度
热传递
纳米结构
粘弹性
消散
能量(信号处理)
智能材料
纳米技术
损伤容限
有限元法
光致聚合物
弹性能
光热治疗
砖
冲击能
气凝胶
仿生学
电子设备和系统的热管理
费斯特共振能量转移
氢
作者
Zimu Li,Liping Gong,Shuai Liu,Jiahao Li,Zhentao Zhang,Jianpeng Wu,Weihua Li,Baoqiang Zhang,Weihua Li,Sheng Wang
摘要
Protective materials for harsh environments should dissipate transient impact energy while maintaining mechanical reliability under thermal fluctuations. Here, we report a bioinspired twisted brick-mortar composite that integrates a carbon-nanotube-reinforced photopolymer framework with a mechanically active shear-stiffening gel mortar. The continuously twisted brick architecture redistributes stress waves and guides crack deflection, whereas reversible interfacial hydrogen bonding and dynamic boron-oxygen crosslinking enable rate-dependent molecular dissipation. This structural-molecular coupling provides efficient impact protection, delivering a low energy transfer rate of 7.38% under high-strain-rate compression and reducing the residual impact force from 20°C to 100°C. The carbon-nanotube-containing framework further provides photothermal responsiveness, allowing reversible stifhefness modulation, adaptive force buffering, and shape recovery after localized high-speed impacts. Together, these results establish a bioinspired twisted brick-mortar design strategy for adaptive thermo-mechanical impact protection.
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