Highly sensitive flexible pressure sensor based on gradient microcolumn structure for ocean wave monitoring

X Xinying Tang (Department of Electronic Engineering, Ocean University of China 1 , Qingdao 266100,) P Pan Liao (Department of Biology) L Lihong Wang (Peking University Institute of Advanced Agricultural Sciences, Shandong Laboratory of Advanced Agriculture Sciences in Weifang) L Lixiang Zheng Y Yanyue Teng (Department of Electronic Engineering, Ocean University of China 1 , Qingdao 266100,) J Jihao Li (Key Laboratory of Photochemical Conversion and Optoelectronic Materials) L Linxu Wang (Department of Electronic Engineering, Ocean University of China 1 , Qingdao 266100,) K Kaiyue Niu (Department of Electronic Engineering, Ocean University of China 1 , Qingdao 266100,) 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

Monitoring the dynamic fluctuations of ocean waves using highly sensitive flexible pressure sensors is a highly promising marine observation technology. In this study, we propose a flexible pressure sensor with a gradient microcolumn structure (GCS) fabricated via micro-lithography precision molding technology. The exceptional compressibility of the microcolumn structure significantly enhances the sensor's sensitivity. The GCS sequentially contacts the electrode layer from high to low, effectively modulating the contact area between the sensitive layer and the electrode layer under varying pressures. This design reduces sensitivity attenuation and broadens the detection range. The sensor achieves a wide detection range of 0–600 kPa and an ultrahigh sensitivity of 3848.57 kPa−1. It retains stable performance even after 30 days of underwater immersion and over 3500 cyclic tests. For waterproofing, we encapsulated the sensor with polydimethylsiloxane and attached it to the bottom and sides of a buoy to detect pressure variations induced by waves of different magnitudes in a water tank, enabling real-time wave monitoring. These results demonstrate its great potential for ocean wave monitoring applications.

Article Details

Volume / Issue Vol. 127, Issue 24
Published December 15, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (11)

X

Xinying Tang

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

P

Pan Liao

Department of Biology

L

Lihong Wang

Peking University Institute of Advanced Agricultural Sciences, Shandong Laboratory of Advanced Agriculture Sciences in Weifang

L

Lixiang Zheng

Y

Yanyue Teng

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

J

Jihao Li

Key Laboratory of Photochemical Conversion and Optoelectronic Materials

L

Linxu Wang

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

K

Kaiyue Niu

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

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