Login / Signup

Boosting thermoelectric performance of single-walled carbon nanotubes-based films through rational triple treatments.

Yuan-Meng LiuXiao-Lei ShiTing WuHao WuYuanqing MaoTianyi CaoDe-Zhuang WangWei-Di LiuMeng LiQingfeng LiuZhi-Gang Chen
Published in: Nature communications (2024)
Single-walled carbon nanotubes (SWCNTs)-based thermoelectric materials, valued for their flexibility, lightweight, and cost-effectiveness, show promise for wearable thermoelectric devices. However, their thermoelectric performance requires significant enhancement for practical applications. To achieve this goal, in this work, we introduce rational "triple treatments" to improve the overall performance of flexible SWCNT-based films, achieving a high power factor of 20.29 µW cm -1  K -2 at room temperature. Ultrasonic dispersion enhances the conductivity, NaBH 4 treatment reduces defects and enhances the Seebeck coefficient, and cold pressing significantly densifies the SWCNT films while preserving the high Seebeck coefficient. Also, bending tests confirm structural stability and exceptional flexibility, and a six-legged flexible device demonstrates a maximum power density of 2996 μW cm -2 at a 40 K temperature difference, showing great application potential. This advancement positions SWCNT films as promising flexible thermoelectric materials, providing insights into high-performance carbon-based thermoelectrics.
Keyphrases
  • room temperature
  • walled carbon nanotubes
  • ionic liquid
  • diffusion weighted imaging
  • magnetic resonance imaging
  • machine learning
  • magnetic resonance
  • blood pressure
  • computed tomography
  • climate change
  • carbon nanotubes