材料科学
硫系化合物
热电材料
纳米技术
热电效应
数码产品
墨水池
纳米线
印刷电子产品
柔性电子器件
光电子学
电气工程
复合材料
热导率
工程类
物理
热力学
作者
Jingjie Du,Botao Zhang,Meng Jiang,Qihao Zhang,Keyi Zhang,Yan Liu,Lianjun Wang,Wan Jiang
标识
DOI:10.1002/adfm.202213564
摘要
Abstract Development of flexible thermoelectric devices offers exciting opportunities for wearable applications in consumer electronics, healthcare, human–machine interface, etc. Despite the increased interests and efforts in nanotechnology‐enabled flexible thermoelectrics, translating the superior properties of thermoelectric materials from nanoscale to macroscale and reducing the manufacturing costs at the device level remain a major challenge. Here, an economic and scalable inkjet printing method is reported to fabricate high‐performance flexible thermoelectric devices. A general templated‐directed chemical transformation process is employed to synthesize several types of 1D metal chalcogenide nanowires (e.g., Ag 2 Te, Cu 7 Te 4 , and Bi 2 Te 2.7 Se 0.3 ). These nanowires are made into inks suitable for inkjet printing by dispersing them in ethanol without any additives. As a showcase for thermoelectric applications, fully inkjet‐printed Ag 2 Te‐based flexible films and devices are prepared. The printed films exhibit a power factor of 493.8 µW m −1 K −2 at 400 K and the printed devices demonstrate a maximum power density of 0.9 µW cm −2 K −2 , both of which are significantly higher than those reported in state‐of‐the‐art inkjet‐printed thermoelectrics. The protocols of metal chalcogenide ink formulations, as well as printing are general and extendable to a wider range of material systems, suggesting the great potential of this printing platform for scalable manufacturing of next‐generation, high‐performance flexible thermoelectric devices.
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