Xiong Ze-Miao, Li Zi-Yan, Zhang Jing-Ru, Guo Li, Fu Ping, Du Fei-Peng, Zhang Yun-Fei
School of Material Science and Engineering, Wuhan Institute of Technology, Wuhan 430205, China.
ACS Appl Mater Interfaces. 2024 Oct 9;16(40):54038-54048. doi: 10.1021/acsami.4c13344. Epub 2024 Sep 30.
Preparing stable n-type flexible single-walled carbon nanotube (SWCNT)-based thermoelectric films with high thermoelectric (TE) performance is desirable for self-powering wearable electronics but remains a challenge. Here, the interface regulation and thermoelectric enhancement mechanism of ferrocene derivatives on polyethylenimine/single-walled carbon nanotube (PEI/SWCNT) composite films have been explored by doping ferrocene derivatives (f-Fc-OH) into PEI/SWCNT films. The results show that the introduction of f-Fc-OH leads to the formation of "thorn" structures on the surfaces of SWCNT bundles via hydrophilic and hydrophobic interactions, the generated energy-filtering effect improves the thermoelectric properties of the PEI/SWCNT film, and the f-Fc-OH-doped PEI/SWCNT (f-Fc-OH/PEI/SWCNT) achieves the highest room-temperature power factor of 182.22 ± 8.60 μW m K with a Seebeck coefficient of -64.28 ± 0.96 μV K and the corresponding value of 4.69 × 10. The Seebeck coefficient retention ratio of the f-Fc-OH/PEI/SWCNT nearly remained 68% after being exposed to air for 3672 h, while the PEI/SWCNT film changed from n-type to p-type after being exposed to air for about 432 h. In addition, the temperature-dependent thermoelectric properties show that the f-Fc-OH/PEI/SWCNT achieves a high power factor of 334.57 μW m K at 353 K. Finally, a flexible TE module consisting of seven pairs of p-n junctions is assembled using the optimum composite film, which produces an open-circuit voltage of 42 mV and a maximum output power of 4.32 μW at a temperature gradient of 60 K. Therefore, this work provides guidance for preparing stable n-type SWCNT-based composite films with enhanced thermoelectric properties, which have potential applications in flexible generators and wearable electronic devices.
制备具有高热电(TE)性能的稳定的基于n型柔性单壁碳纳米管(SWCNT)的热电薄膜对于自供电可穿戴电子产品而言是很有必要的,但仍然是一项挑战。在此,通过将二茂铁衍生物(f-Fc-OH)掺杂到聚乙烯亚胺/单壁碳纳米管(PEI/SWCNT)薄膜中,探索了二茂铁衍生物对PEI/SWCNT复合薄膜的界面调控和热电增强机制。结果表明,f-Fc-OH的引入通过亲水和疏水相互作用导致在SWCNT管束表面形成“刺”状结构,产生的能量过滤效应改善了PEI/SWCNT薄膜的热电性能,并且f-Fc-OH掺杂的PEI/SWCNT(f-Fc-OH/PEI/SWCNT)实现了最高的室温功率因子182.22±8.60 μW m⁻¹ K⁻²,塞贝克系数为-64.28±0.96 μV K⁻¹,相应的电导率值为4.69×10³ S m⁻¹。f-Fc-OH/PEI/SWCNT在空气中暴露3672小时后塞贝克系数保留率几乎保持在68%,而PEI/SWCNT薄膜在空气中暴露约432小时后从n型变为p型。此外,温度依赖的热电性能表明,f-Fc-OH/PEI/SWCNT在353 K时实现了334.57 μW m⁻¹ K⁻²的高功率因子。最后,使用最佳复合薄膜组装了一个由七对p-n结组成的柔性TE模块,在60 K的温度梯度下产生42 mV的开路电压和4.32 μW的最大输出功率。因此,这项工作为制备具有增强热电性能的稳定的基于n型SWCNT的复合薄膜提供了指导,这些薄膜在柔性发电机和可穿戴电子设备中具有潜在应用。