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Updated: Sep 11, 2026

Sensing of Barrier Tissue Disruption with an Organic Electrochemical Transistor
Published on: February 10, 2014
A highly sensitive and drift-free iontronic sensor enabled by a polarity-balanced polyelectrolyte for surgical force
Xingyu Hou1,2, Jiaqi Zhu1, Chengfeng Pan3,4,5
1Department of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Hong Kong SAR 999077, P. R. China.
Abstract:
Iontronic pressure sensors featuring high sensitivity are promising across different emerging fields. In applications requiring high-fidelity sensing such as surgeries, reliable pressure monitoring necessitates sensitivity and stability at the same time to ensure safety. However, existing iontronic sensors often face a trade-off between them-soft ionic materials with high conductivity often present pronounced viscoelasticity, resulting in a low sensitivity-to-drift-rate (S/D) ratio. Here, we report a polyelectrolyte-based iontronic pressure sensor that achieves a nearly one order-of-magnitude improvement in S/D ratio over state-of-the-art designs using a polarity-balance strategy in the polyelectrolyte to simultaneously regulate ionic conductivity and viscoelasticity. The resulting sensor exhibits ultrahigh sensitivity (119.5 per kilopascal) and exceptional stability (drift rate < 1%) under prolonged pressures up to 450 kilopascals, enabling nearly drift-free pressure detection for high-precision surgical operations in both surgeon-operated and robotic-assisted procedures. This work provides an extensible material design strategy to enhance sensitivity while suppressing signal drift in soft pressure sensors, with broad relevance to robotics, medical devices, and wearables.
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