Development of fast-response flexible temperature sensor for air–sea interface monitoring

Y Yabing Li J JieFei Li (Department of Electronic Engineering, Ocean University of China 1 , Qingdao 266100,) Y Yujian Jin (China Research Institute of Radiowave Propagation 2 , Xinxiang 453003,) W Wenbiao Zhang (Guangdong Provincial Key Lab of Green Chemical Product Technology, School of Chemistry and Chemical Engineering) Y Yuxi Gao K Ke Hu (School of Chemical Science and Engineering, Tongji University, 1239 Siping Road, Shanghai 200092, P. R. China) L Linxu Wang (Department of Electronic Engineering, Ocean University of China 1 , Qingdao 266100,) W Wei Yu S Shuai Ren (Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.) H Haijun Liu L Libo Gao Q Qi Wen (Shaanxi Key Laboratory of Macromolecular Science and Technology, Xi’an Key Laboratory of Hybrid Luminescent Materials and Photonic Device, MOE Key Laboratory of Material Physics and Chemistry under Extraordinary Conditions, School of Chemistry and Chemical Engineering) J Junyang Li

Abstract

Sea surface temperature plays a crucial role in the exchange of heat, gases, and materials between the ocean and atmosphere, profoundly influencing global climate, marine ecosystems, and atmospheric circulation. However, temperature variations at the air–sea interface are rapid and highly unstable, being affected by multiple dynamic factors, posing significant challenges for real-time monitoring. In this work, a rapid-response flexible temperature sensor was developed using polyimide film as the substrate. Based on the thermal expansion mechanism and finite element analysis, the optimal sensor structure and material composition were determined. The sensor was fabricated via screen-printing technology, employing a acrylic copolymer and polydimethylsiloxane (PDMS) as the composite matrix, with carbon black and nickel serving as conductive fillers. A PDMS encapsulation layer was applied to enhance waterproofing performance. Within the temperature range of 0–35 °C, the sensor exhibited a high temperature coefficient of resistance of 4.82%/°C, an excellent temperature resolution of 0.05 °C, an ultrafast response time of 40 ms, outstanding thermal stability over more than 500 heating–cooling cycles, and strong insensitivity to external stimuli such as bending, humidity, and pressure. When integrated into a marine buoy system for testing, the sensor accurately detected temperature fluctuations, demonstrating great potential for temperature monitoring at the air–sea interface.

Article Details

Volume / Issue Vol. 128, Issue 4
Published January 26, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (13)

Y

Yabing Li

J

JieFei Li

Department of Electronic Engineering, Ocean University of China 1 , Qingdao 266100,

Y

Yujian Jin

China Research Institute of Radiowave Propagation 2 , Xinxiang 453003,

W

Wenbiao Zhang

Guangdong Provincial Key Lab of Green Chemical Product Technology, School of Chemistry and Chemical Engineering

Y

Yuxi Gao

K

Ke Hu

School of Chemical Science and Engineering, Tongji University, 1239 Siping Road, Shanghai 200092, P. R. China

L

Linxu Wang

Department of Electronic Engineering, Ocean University of China 1 , Qingdao 266100,

W

Wei Yu

S

Shuai Ren

Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.

H

Haijun Liu

L

Libo Gao

Q

Qi Wen

Shaanxi Key Laboratory of Macromolecular Science and Technology, Xi’an Key Laboratory of Hybrid Luminescent Materials and Photonic Device, MOE Key Laboratory of Material Physics and Chemistry under Extraordinary Conditions, School of Chemistry and Chemical Engineering

J

Junyang Li