Zhang Han, Zhang Chun, Li Hui, Liu Siqi, Wang Wenbo, Li Pengcheng, He Chaobin
Hubei Key Laboratory of Plasma Chemistry and Advanced Materials, Hubei Engineering Technology Research Center of Optoelectronic and New Energy Materials, School of Materials Science and Engineering, Wuhan Institute of Technology, Wuhan, 430205, China.
Department of Materials Science & Engineering, National University of Singapore, 9 Engineering Drive 1, 117574, Singapore.
Chem Asian J. 2024 Jun 17;19(12):e202400211. doi: 10.1002/asia.202400211. Epub 2024 May 6.
The growing demand for wearable electronics has driven the development of flexible thermoelectric (TE) generators which can harvest waste body heat as a renewable power source. Despite carbon nanotube (CNT) yarns have attracted significant attention as a promising candidate for TE materials, challenges still exist in improving their TE efficiency for commercial applications. Herein, we developed high performance CNT/polyaniline (PANI) yarns by engineering the coating of polyaniline emeraldine base (PANIeb), in which CNT yarns were firstly coated by PANIeb layer and further doped by HCl vapor treatment. With the incorporation of PANIeb, σ and S were simultaneously increased to 1796 S cm and 74.8 μV K for CNT/PANIeb 4-2d fibers, respectively. Further HCl vapor treatment induced greatly increased σ to 3194 S cm, but maintained be 83 % value before doping, giving rise to the highest power factor of 1224 μW mK, higher than pristine CNT yarns of 576 μW mK. Combining outstanding high TE performance and bending durability, a flexible TE generator was constructed to deliver high out power of 187 nW with temperature gradients of about 30 K. These results demonstrate the potential promise of high-performance CNT/PANI-HCl yarns to harvest waste body heat for sustainable power supply.
对可穿戴电子产品不断增长的需求推动了柔性热电(TE)发电机的发展,这种发电机可以收集人体废热作为可再生能源。尽管碳纳米管(CNT)纱线作为一种有前途的TE材料候选物已引起了广泛关注,但在提高其用于商业应用的TE效率方面仍然存在挑战。在此,我们通过设计聚苯胺翡翠盐(PANIeb)涂层开发了高性能的CNT/聚苯胺(PANI)纱线,其中CNT纱线首先被PANIeb层包覆,然后通过HCl蒸汽处理进行进一步掺杂。通过引入PANIeb,CNT/PANIeb 4-2d纤维的电导率(σ)和塞贝克系数(S)分别同时提高到1796 S cm⁻¹和74.8 μV K⁻¹。进一步的HCl蒸汽处理使σ大幅增加到3194 S cm⁻¹,但保持了掺杂前83%的值,从而产生了高达1224 μW m⁻¹K⁻²的功率因子,高于原始CNT纱线的576 μW m⁻¹K⁻²。结合出色的高TE性能和弯曲耐久性,构建了一种柔性TE发电机,在约30 K的温度梯度下可提供187 nW的高输出功率。这些结果证明了高性能CNT/PANI-HCl纱线在收集人体废热以实现可持续供电方面的潜在前景。