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高性能W掺杂BiSbTe柔性热电薄膜及发电机

High-Performance W-Doped BiSbTe Flexible Thermoelectric Films and Generators.

作者信息

Liu Zerui, Zhang Yulin, Xue Feng-Ning, Liu Ting, Ding Xiaokang, Lu Yong, Zhang Ji-Cai, Xu Fu-Jian

机构信息

State Key Laboratory of Chemical Resource Engineering, Laboratory of Biomedical Materials and Key Lab of Biomedical Materials of Natural Macromolecules (Ministry of Education), Beijing University of Chemical Technology, Beijing 100029, China.

College of Mathematics and Physics, Beijing University of Chemical Technology, Beijing 100029, China.

出版信息

ACS Appl Mater Interfaces. 2024 May 22;16(20):26025-26033. doi: 10.1021/acsami.4c00529. Epub 2024 May 8.

Abstract

Bi-Sb-Te-based thermoelectric materials have the best room-temperature thermoelectric properties, but their inherent brittleness and rigidity limit their application in the wearable field. In this study, W-doped -type BiSbTe (W-BST) thin films were prepared using magnetron sputtering on polyimide substrates to create thermoelectric generators (TEGs). Bending tests showed that the thin film has excellent flexibility and mechanical durability, meeting the flexible requirements of wearable devices. W doping can significantly increase the carrier concentration, Seebeck coefficient, and electrical conductivity of BST thin films. At 300 K, the power factor of the W-BST film is 2.25 times higher than that of the undoped film, reaching 13.75 μW cm K. First-principles calculations showed that W doping introduces significant impurity peaks in the bandgap, in which W electrons remarkably hybridize with the Sb and Te electrons, leading to an improved electrical conductivity of BST films. Furthermore, W doping significantly reduces the work function of BST films, thereby improving the carrier mobility. A TEG module fabricated from four layers of W-BST thin films achieved a maximum output power density of 6.91 mW cm at a temperature difference of 60 K. Application tests showed that the flexible TEG module could power a portable clock using the temperature difference between body temperature and room temperature. At a medium temperature of 439 K, the assembled TEG module can provide a stable output voltage of 1.51 V to power a LED. This study demonstrates the feasibility of combining inorganic thermoelectric materials with flexible substrates to create high-performance flexible TEGs.

摘要

基于铋-锑-碲的热电材料具有最佳的室温热电性能,但其固有的脆性和刚性限制了它们在可穿戴领域的应用。在本研究中,采用磁控溅射在聚酰亚胺衬底上制备了W掺杂的n型BiSbTe(W-BST)薄膜,以制造热电发电机(TEG)。弯曲测试表明,该薄膜具有优异的柔韧性和机械耐久性,满足了可穿戴设备的柔性要求。W掺杂可显著提高BST薄膜的载流子浓度、塞贝克系数和电导率。在300K时,W-BST薄膜的功率因子比未掺杂薄膜高2.25倍,达到13.75μW cm-1 K-2。第一性原理计算表明,W掺杂在带隙中引入了显著的杂质峰,其中W的电子与Sb和Te的电子发生明显杂化,导致BST薄膜的电导率提高。此外,W掺杂显著降低了BST薄膜的功函数,从而提高了载流子迁移率。由四层W-BST薄膜制成的TEG模块在60K的温差下实现了6.91mW cm-2的最大输出功率密度。应用测试表明,柔性TEG模块可以利用体温与室温之间的温差为便携式时钟供电。在439K的中等温度下,组装好的TEG模块可以提供1.51V的稳定输出电压来为发光二极管供电。本研究证明了将无机热电材料与柔性衬底相结合以制造高性能柔性TEG的可行性。

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