消散
刚度
材料科学
包含能量
结构工程
计算机科学
动载荷
循环应力
承重
复合材料
工程类
热力学
物理
作者
Bohan Sun,Grant Kitchen,Dongjing He,Deep Malu,J.M. Ding,Yiji Huang,Adebayo Eisape,Mostafa M. Omar,Yuhang Hu,Sung Hoon Kang
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-02-07
卷期号:11 (6)
被引量:2
标识
DOI:10.1126/sciadv.adt3979
摘要
Material properties gradually degrade under cyclic loading, leading to catastrophic failure. It results in large costs for inspection, maintenance, and downtime. Besides, materials require combinations of performance such as load bearing and energy dissipation. However, improving one performance of a material often sacrifices another performance, making it difficult to create materials with optimal performance profiles. Here we report a liquid-infused porous piezoelectric scaffold (LIPPS) that simultaneously enhances its load-bearing and energy dissipation capability under cyclic loading. For example, after 12 million loading cycles, LIPPS increases its modulus by 3600% and hysteresis by 3000%. From a CT study, this behavior is attributed to the self-recoverable mineralization under mechanical loading. Moreover, LIPPS shows a reprogrammable stiffness distribution based on the loading distribution, which enables the material to generate multiple shapes by self-folding. Our findings can contribute toward unprecedented opportunities in soft robotics, vehicles, infrastructure, and tissue engineering and contribute to the new paradigm of material selection with improved resilience and sustainability.
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