Kumanek Bogumiła, Stando Grzegorz, Stando Paweł, Matuszek Karolina, Milowska Karolina Z, Krzywiecki Maciej, Gryglas-Borysiewicz Marta, Ogorzałek Zuzanna, Payne Mike C, MacFarlane Douglas, Janas Dawid
Department of Organic Chemistry, Bioorganic Chemistry and Biotechnology, Silesian University of Technology, B. Krzywoustego 4, 44-100, Gliwice, Poland.
School of Chemistry, Monash University, Clayton, VIC, 3800, Australia.
Sci Rep. 2021 Apr 21;11(1):8649. doi: 10.1038/s41598-021-88079-w.
Carbon nanotubes (CNTs) are materials with exceptional electrical, thermal, mechanical, and optical properties. Ever since it was demonstrated that they also possess interesting thermoelectric properties, they have been considered a promising solution for thermal energy harvesting. In this study, we present a simple method to enhance their performance. For this purpose, thin films obtained from high-quality single-walled CNTs (SWCNTs) were doped with a spectrum of inorganic and organic halide compounds. We studied how incorporating various halide species affects the electrical conductivity, the Seebeck coefficient, and the Power Factor. Since thermoelectric devices operate under non-ambient conditions, we also evaluated these materials' performance at elevated temperatures. Our research shows that appropriate dopant selection can result in almost fivefold improvement to the Power Factor compared to the pristine material. We also demonstrate that the chemical potential of the starting CNT network determines its properties, which is important for deciphering the true impact of chemical and physical functionalization of such ensembles.
碳纳米管(CNTs)是具有卓越电学、热学、力学和光学性能的材料。自从证明它们还具有有趣的热电性能以来,它们就被认为是一种很有前景的热能收集解决方案。在本研究中,我们提出了一种提高其性能的简单方法。为此,从高质量单壁碳纳米管(SWCNTs)获得的薄膜用一系列无机和有机卤化物化合物进行了掺杂。我们研究了掺入各种卤化物物种如何影响电导率、塞贝克系数和功率因数。由于热电器件在非环境条件下运行,我们还评估了这些材料在高温下的性能。我们的研究表明,与原始材料相比,适当选择掺杂剂可使功率因数提高近五倍。我们还证明,起始碳纳米管网络的化学势决定了其性能,这对于解读此类集合体的化学和物理功能化的真正影响很重要。