4.6 Article

Highly Flexible, Stretchable, and Self-Powered Strain-Temperature Dual Sensor Based on Free-Standing PEDOT:PSS/Carbon Nanocoils-Poly(vinyl) Alcohol Films

期刊

ACS SENSORS
卷 6, 期 3, 页码 1120-1128

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acssensors.0c02390

关键词

self-powered devices; carbon nanocoils; thermoelectric polymers; temperature sensors; strain sensors; flexible nano-composites; electronic skin; wearable devices

资金

  1. National Natural Science Foundation of China [51972039, 51803018]
  2. LiaoNing Revitalization Talents Program [XLYC1902122]

向作者/读者索取更多资源

In this study, self-powered temperature-strain dual sensors based on PE-DOT:PSS and CNCs were fabricated, showing excellent sensing performance and temperature detect limit, which can be applied in the fields of healthcare and artificial intelligence in the future.
The wearable and self-powered sensors with multiple functions are urgently needed for energy saving devices, economical convenience, and artificial human skins. It is a meaningful idea to convert excess heat sources into power supplies for wearable sensors. In this report, we have fabricated a series of free-standing self-powered temperature-strain dual sensors based on poly(3,4-ethylenedioxythiophene) polystyrenesulfonate (PE-DOT:PSS)/carbon nanocoils (CNCs)-poly(vinyl) alcohol composite films by a simple drop casting method. The Seebeck coefficients of the composite films were measured to be 19 mu V/K. The sensor, with the addition of CNCs, showed a superior sensing performance to that without CNCs. PEDOT:PSS is used to provide a thermoelectric power to detect temperature changes and strain deformations. The minimum detect limit for the temperature difference was 0.3 K. Under a constant temperature gradient of 30 K, strains from 1 to 10% were detected without any external power supply. The films can be easily made into an array to detect the temperature of the fingers and motions of the wrist by attaching it to the human wrist directly. For the first time, due to the independent action of the thermoelectric material and strain sensing material, the thermoelectric voltage which is generated by a constant temperature difference is maintained under different strains. This kind of free-standing self-powered multifunctional sensors has great application prospects in the fields of healthcare and artificial intelligence in the future.

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