4.8 Article

Fully printed and flexible carbon nanotube-based thermoelectric generator capable for high-temperature applications

期刊

JOURNAL OF POWER SOURCES
卷 507, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jpowsour.2021.230323

关键词

Single wall carbon nanotubes (SWCNTs); Carbon-based thermoelectric generator (TEG); Printed thermoelectric generator; Wearables; High temperature flexible thermoelectric generator

资金

  1. European Union under the RESEARCH-CREATE-INNOVATE call through the operational programme: Competitiveness, Entrepreneurship & Innova-tion 2014-2020 (EPAnEK) [T1EDK03480]
  2. Greek national funds

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This study successfully fabricated a fully printed carbon nanotube-based Thermoelectric Generator (TEG) with excellent flexibility and remarkable power output, capable of operating at high temperatures up to 350 degrees C. The TEG device, easily manufactured through low-cost ink printing processes, exhibited remarkable power factors on high-temperature resistant substrates, along with exceptional stability in air. The produced TEG showed high thermoelectric performance in the field of carbon-based and printed thermoelectric devices, with the potential for large-scale manufacturing opportunities.
In this study, a fully printed carbon nanotube (CNT) based Thermoelectric Generator (TEG) is successfully fabricated, which exhibits excellent flexibility and remarkable power output, capable of high-temperature operation up to 350 degrees C. The TEG device can be easily manufactured through ink printing processes of lowcost aqueous single wall carbon nanotube-based (SWCNT) ink with a mask-assisted design. The optimal SWCNT-based thermoelectric (TE) films fabricated on high-temperature resistant polyimide (Kapton) substrate exhibit a remarkable power factor of 493 mu W/mK2 at AT = 300 K, combined with excellent stability in air. The TEG device is capable to operate at temperatures up to 350 degrees C in ambient conditions (atmospheric pressure: 1 atm and relative humidity: 50 +/- 5%). Together with exceptional stability and flexibility, the produced TEG exhibits thermoelectric performance values among the highest ever reported in the field of carbon-based and printed thermoelectric devices, with i.e. open-circuit voltage VOC = 1.11 V, short-circuit current ISC = 1.67 mA and internal resistance RTEG = 671 rd at AT = 300 K, generating a maximum power output (Pmax) of 461 mu W. The proposed TEG device architecture is easily scalable, enabling large-scale printing manufacturing opportunities towards highly efficient, high-operating temperature, printed and flexible carbon-based TEGs.

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