Dual Sensing Signal Decoupling Based on Thermoelectric Polymer Aerogels for Precise Temperature and Pressure Recognition

Author:

Wang Zubin12,Jiang Saihua12ORCID,Huang Yubin3,Song Tao12,Liufu Chaokang12,Huang Yangchun12,Zhou Gang4,Zhang Qi4,Qian Xiaodong5,Lan Yang6,Attia Nour F.7

Affiliation:

1. Institute of Safety Science and Engineering School of Mechanical and Automotive Engineering South China University of Technology Wushan Road 381 Guangzhou 510641 China

2. Guangdong Provincial Key Laboratory of Technique and Equipment for Macromolecular Advanced Manufacturing South China University of Technology Guangzhou 510641 China

3. Institute of Condensed Matter and Nanosciences Université catholique de Louvain (UCLouvain) Louvain‐la‐Neuve 1348 Louvain Belgium

4. College of Safety and Environmental Engineering Shandong University of Science and Technology Qingdao 266590 China

5. Beijing Key Laboratory of Metro Fire and Passenger Transportation Safety Academy of Safety Science and Technology Beijing 100012 China

6. Dept of Chemical Engineering University College London London WC1E7JE UK

7. Gas Analysis and Fire Safety Laboratory Chemistry Division National Institute for Standards Giza 12211 Egypt

Abstract

AbstractThe capability to emulate skin‐like temperature and pressure sensing is fundamental for next‐generation artificial intelligence products. However, detecting temperature and pressure simultaneously with a single sensor without signal interference is challenging. Herein, a novel PCC aerogel sensor composed of PEDOT:PSS, CNTs, and CNF via directional freezing technology is developed. The PCC sensor can decouple temperature and pressure stimuli into individual voltage and resistance signals. It exhibits high‐precision temperature sensing capabilities, boasting an exceptionally high Seebeck coefficient of 30.4 µV K‐1 and the ability to detect temperature variations as low as 0.1 K. PCC sensors show excellent sensitivity and fast response times for detecting static and dynamic pressures, as well as high stability after 1000 cycles. Its maximum pressure sensitivity can reach 159.1% kPa−1, and the lowest detection limit is 10 Pa. Additionally, its excellent thermoelectric properties also enable to generating thermopower from human skin for self‐powered pressure sensing. A 3×3 PCC sensor array has been proposed to simulate the unique features of human skin in temperature and pressure recognition. This work provides a scalable manufacturing strategy for multi‐functional tactile sensors.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Guangdong Province

Publisher

Wiley

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