材料科学
热电效应
热电材料
复合数
能量收集
三元运算
可穿戴计算机
自愈
复合材料
可穿戴技术
机械能
机械工程
纳米技术
能量(信号处理)
功率(物理)
计算机科学
热导率
病理
嵌入式系统
工程类
物理
统计
热力学
医学
程序设计语言
替代医学
量子力学
数学
作者
Seyoung Kee,Md Azimul Haque,Daniel Corzo,Husam N. Alshareef,Derya Baran
标识
DOI:10.1002/adfm.201905426
摘要
Abstract With the advent of flexible and wearable electronics and sensors, there is an urgent need to develop energy‐harvesting solutions that are compatible with such wearables. However, many of the proposed energy‐harvesting solutions lack the necessary mechanical properties, which make them susceptible to damage by repetitive and continuous mechanical stresses, leading to serious degradation in device performance. Developing new energy materials that possess high deformability and self‐healability is essential to realize self‐powered devices. Herein, a thermoelectric ternary composite is demonstrated that possesses both self‐healing and stretchable properties produced via 3D‐printing method. The ternary composite films provide stable thermoelectric performance during viscoelastic deformation, up to 35% tensile strain. Importantly, after being completely severed by cutting, the composite films autonomously recover their thermoelectric properties with a rapid response time of around one second. Using this self‐healable and solution‐processable composite, 3D‐printed thermoelectric generators are fabricated, which retain above 85% of their initial power output, even after repetitive cutting and self‐healing. This approach represents a significant step in achieving damage‐free and truly wearable 3D‐printed organic thermoelectrics.
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