Das Surajit, Mondal Bhargab P, Ranjan Priya, Datta Anuja
School of Applied and Interdisciplinary Sciences, Indian Association for the Cultivation of Science, Jadavpur, Kolkata 700 032, India.
Technical Research Center, Indian Association for the Cultivation of Science, Jadavpur, Kolkata 700 032, India.
ACS Appl Mater Interfaces. 2023 Dec 6;15(48):56022-56033. doi: 10.1021/acsami.3c13576. Epub 2023 Nov 27.
Flexible paper-based thermoelectric generators (PTEGs) have drawn significant interest in recent years due to their various advantages such as flexibility, adaptability, environment friendliness, low cost, and easy fabrication process. However, the reported PTEG's output performance still lags behind the performance of other flexible devices as it is not so easy to obtain a compact film on a paper-based substrate with desirable power output with the standard thermoelectric (TE) materials that have been previously utilized. In this direction, CuSnS (CTS), an earth-abundant, ternary sulfide, can be a good choice p-type semiconductor, when paired with a suitable n-type TE material. In this article, CTS nanocubes are synthesized via a simple hot injection method and a thick film device on emery paper was prepared and optimized. Furthermore, a flexible, 20-pair PTEG is fabricated with p-type CTS legs and traced and pressed n-type bismuth legs assembled using Kapton tape that produced a significantly high output power of 2.18 μW (output power density ∼0.85 nW cm K) for a temperature gradient of Δ = 80 K. The TE properties are also supported by finite element simulation. The bending test conducted for the PTEG suggests device stability for up to 800 cycles with <0.05% change in the internal resistance. A proof-of-concept field-based demonstration for energy harvesting from waste heat of a motorbike exhaust is shown recovering an output power of ∼42 nW for Δ = 20 K, corroborating the experimental and theoretical results.
近年来,柔性纸质热电发电机(PTEG)因其具有柔韧性、适应性、环境友好、成本低和制造工艺简单等多种优点而备受关注。然而,报道的PTEG的输出性能仍落后于其他柔性器件,因为使用先前使用的标准热电(TE)材料在纸质基板上获得具有理想功率输出的致密薄膜并非易事。在这方面,CuSnS(CTS)是一种储量丰富的三元硫化物,当与合适的n型TE材料配对时,它可以成为一种很好的p型半导体选择。在本文中,通过简单的热注入法合成了CTS纳米立方体,并制备并优化了砂纸厚膜器件。此外,用p型CTS腿和用Kapton胶带组装的经追踪和压制的n型铋腿制造了一种柔性20对PTEG,对于80K的温度梯度,其产生了2.18μW的显著高输出功率(输出功率密度~0.85nW cm K)。有限元模拟也支持这些TE特性。对PTEG进行的弯曲测试表明,该器件在800次循环内具有稳定性,内阻变化<0.05%。展示了一个基于概念验证的现场演示,用于从摩托车尾气废热中收集能量,对于20K的温度梯度,回收的输出功率约为42nW,证实了实验和理论结果。