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Published on: March 17, 2023
Crack-Interlocked Metal/Elastomer Interfaces for Preload-Adapted Backside Pressure Sensing
Yan Ma1, Yu Zhang1, Wanqing Xu1
1College of Smart Materials and Future Energy, State Key Laboratory of Coatings for Advanced Equipment, Advanced Coatings Research Center of Ministry of Education of China, Fudan University, Shanghai200433, China.
Abstract:
Flexible pressure sensors capable of resolving small pressure variations under large static loads are desirable for embedded and backside-mounted monitoring, where the sensing layer cannot be directly exposed to the contact surface. However, most highly sensitive pressure sensors are optimized for low-pressure operation, and their sensitivity decreases under preloads. Here, we report a crack-interlocked ridge structure composed of two facing PDMS micro-ridge arrays and a thin Pt conductive layer. The interlocked architecture converts vertical compression into localized tensile deformation at the Pt/elastomer interface, producing a reproducible crack-mediated resistance transition near a designed preload. The resulting sensor exhibits a maximum local sensitivity of 2582.8 kPa-1 within the transition window and maintains repeatable responses over 1000 loading-unloading cycles. By varying the interlayer thickness, the active sensing window can be shifted across 50-700 kPa, enabling preload-adapted pressure-change detection in mechanically biased configurations. As a proof of concept, the sensor detects a small additional load placed on a heavy object in a backside-mounted configuration. This crack-interlocked interface design provides a strategy for mechanically programming the pressure window of flexible resistive sensors for embedded monitoring applications.
