材料科学
能量收集
热电发电机
数码产品
自愈
热电效应
汽车工程
纳米技术
功率(物理)
电气工程
物理
工程类
热力学
病理
医学
替代医学
量子力学
作者
Pengcheng Zhu,Chuanqian Shi,Yalong Wang,Yaling Wang,Yuedong Yu,Yao Wang,Yuan Deng,Jianliang Xiao
标识
DOI:10.1002/aenm.202100920
摘要
Abstract Direct energy conversion based on thermoelectric (TE) materials is a long‐term and maintenance‐free energy harvesting technique, and therefore is very promising for self‐powered wearable electronics. Yet, it is challenging to achieve high‐performance stretchable, healable, and even recyclable thermoelectric generators (TEGs) without compromising TE conversion performance due to the intrinsic mechanical rigidity and brittleness of the inorganic TE materials. Herein, recyclable, healable, and stretchable TEGs (RHS‐TEGs) are reported that are assembled from commercial Bi 2 Te 3 and Sb 2 Te 3 TE legs generating superior power density via the use of liquid metal as interconnects and dynamic covalent thermoset polyimine as encapsulation. The TEGs fabricated using this strategy are endowed with excellent TE performance, mechanical compliance, and healing and recycling capabilities. The normalized output power density and mechanical stretchability can reach up to 1.08 µW cm −2 ·K 2 and 50%, respectively. After healing and recycling, the TEGs show output performance comparable to the original devices. The TEGs also exhibit high reliability and stability under cyclic deformation. This study paves the way for sustainable application of TEGs as energy harvesters to power wearable electronics using body heat.
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