Jin Xin-Zheng, Qi Xiao-Dong, Wang Ying, Yang Jing-Hui, Li Hao, Zhou Zuo-Wan, Wang Yong
School of Materials Science & Engineering, Key Laboratory of Advanced Technologies of Materials (Ministry of Education), Southwest Jiaotong University, Chengdu 610031, China.
ACS Appl Mater Interfaces. 2021 Feb 24;13(7):8808-8822. doi: 10.1021/acsami.0c22123. Epub 2021 Feb 10.
Helical carbon nanotube (HCNT) is a vital member of carbon nanomaterials, but little effort was devoted to explore its unique characteristics and applications during the past few decades. Here, we report an organic thermoelectric composite with an excellent photothermoelectric (PTE) effect by conformally wrapping polypyrrole (PPy) on the intricate surface of HCNTs, which have been confirmed to have remarkable near-infrared (NIR) photothermal conversion capability and ultralow heat transportation characteristics. The results indicate that with the increasing HCNT content, PPy shell thickness reduces and exhibits denser as well as partial orientation, while the inter-ring angle slowly decreases and the bipolaron becomes dominant in carrier composition gradually. Consequently, the Seebeck coefficient increases monotonically, whereas the electrical conductivity remains nearly invariant. The final composite combines the benign thermoelectric properties, excellent photothermal response performance, and the lowest thermal conductivity of the carbon-based thermoelectric composite yet reported (0.064 W m K). A single strip NIR light-stimulated adjustable delay switch was designed and fabricated, with the open-circuit voltage and short-circuit current under a 400 mW cm NIR-stimulated approach to 720 μV and 62 nA with the discrepancy of consecutive periodic output signals less than 4.2%, exhibiting incredible stability and reliability and demonstrating the highest output voltage of a single strip among the reported organic PTE composite at room temperature. Our work fills in a gap of HCNT research, which hitherto existed in the PTE and thermoelectric field.
螺旋碳纳米管(HCNT)是碳纳米材料的重要成员,但在过去几十年里,人们很少致力于探索其独特特性和应用。在此,我们报道了一种通过在HCNT复杂表面共形包裹聚吡咯(PPy)而具有优异光热电(PTE)效应的有机热电复合材料,已证实HCNT具有显著的近红外(NIR)光热转换能力和超低热传输特性。结果表明,随着HCNT含量的增加,PPy壳层厚度减小,且变得更致密并呈现部分取向,而环间角度缓慢减小,双极化子在载流子组成中逐渐占主导地位。因此,塞贝克系数单调增加,而电导率几乎保持不变。最终的复合材料结合了良好的热电性能、优异的光热响应性能以及碳基热电复合材料迄今报道的最低热导率(0.064 W m⁻¹ K⁻¹)。设计并制作了一个单条近红外光刺激可调延迟开关,在400 mW cm⁻²近红外刺激下,开路电压和短路电流分别达到720 μV和62 nA,连续周期输出信号的差异小于4.2%,表现出令人难以置信的稳定性和可靠性,并且在室温下展示了所报道的有机PTE复合材料中单条的最高输出电压。我们的工作填补了HCNT研究在PTE和热电领域迄今存在的空白。