A highly sensitive and drift-free iontronic sensor enabled by a polarity-balanced polyelectrolyte for surgical force sensing.

Hou, Xingyu; Zhu, Jiaqi; Pan, Chengfeng; Wang, Xin; Nie, Zhenzhou; Ma, Qianli; Zhang, Zifeng; Xue, Junnan et al. · Sci Adv · 2026

basic_science · Level V

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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 (<i>S/D</i>) ratio. Here, we report a polyelectrolyte-based iontronic pressure sensor that achieves a nearly one order-of-magnitude improvement in <i>S/D</i> 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.