热电发电机
材料科学
制作
纱线
热电效应
可扩展性
光电子学
发电机(电路理论)
基质(水族馆)
热电冷却
复合材料
机械工程
可穿戴计算机
弯曲
墨水池
可穿戴技术
功率(物理)
热电材料
纳米技术
塞贝克系数
脆性
硒化物
功勋
弯曲半径
工程物理
阳极
螺旋(铁路)
作者
Woomin Park,Yeong A Kang,H. Kim,Eun Jin Bae,Young Hun Kang,Mijeong Han,Kwang-Suk Jang,D. Y. Kim
标识
DOI:10.1007/s42765-025-00656-0
摘要
Abstract Thermoelectric generators (TEGs) are a promising strategy for harvesting body heat to power wearable electronics. However, the development of a TEG that combines high mechanical durability, effective utilization of vertical temperature gradients, and scalable fabrication remains a major challenge exacerbated by the inherent brittleness of most inorganic thermoelectric materials. We report a TEG where cotton yarn serves as a flexible substrate that is coated with silver selenide (Ag 2 Se), which is an intrinsically ductile thermoelectric material. Ag 2 Se is coated on cotton yarns by a simple solution process that eliminates the need for high temperatures while preserving scalability and mechanical flexibility. Systematic optimization of the Ag 2 Se-coated yarns resulted in a figure of merit of 0.343 at 295 K. A yarn-based TEG was fabricated that maintained excellent durability over 5000 bending cycles with a 6 mm radius of curvature. Under real-world conditions for wearable applications, the yarn TEG generated 0.326 µW at a temperature difference of 2.8 K (stationary) and 0.604 µW at a temperature difference of 4.4 K (walking). This work establishes a scalable and practical platform for integrating high-performance inorganic thermoelectric materials into flexible and wearable energy-harvesting systems. Graphical Abstract
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