A Bioinspired Ionic Diode Tactile Sensor for Embodied Sensorimotor Intelligence in Robotics

ABSTRACT The fusion of wearable sensors and embodied artificial intelligence (AI) is opening new pathways for human‐robotics interaction and personal care technologies. Biological skin relies on ion‐mediated tactile sensing while most artificial counterparts use electronic signal transduction, which creates a fundamental biointegration barrier. Here, we report a facile strategy for fabricating passive ionic diode tactile sensors as well as developing a novel fundamental understanding of the sensing mechanism, which combines semiconductor theory and charge‐induction effects. The device incorporates p‐ and n‐type ionic hydrogels separated by a nylon mesh with microchannels to form a bioinspired ionic diode. Under external pressure, the increased contact area between p‐ and n‐type ionic hydrogels enhances space charge generation, leading to charge accumulation in the electrical double layer, which produces measurable current signals. This design achieves outstanding sensing properties such as high sensitivity (1.71 kPa −1 ), fast response/recovery speed (0.2 s/0.2 s), excellent stability (>5000 cycles), and static/dynamic detection ability. Through integrating a sensor array with machine learning, accurate handwritten digit recognition (96% accuracy) has been realized. Furthermore, we attach a sensor array onto a robotic hand to recognize tracing motions during digit writing and respond with corresponding gestures mimicking human‐like context‐aware behavior.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-07-06
DOI
https://doi.org/10.1002/adfm.76889
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

A Bioinspired Ionic Diode Tactile Sensor for Embodied Sensorimotor Intelligence in Robotics

Hengchang Bi, Kuibo Yin, Yizhou Ye, Shunbo Li et al.
Advanced Functional Materials
Advanced Sensor and Energy Harvesting Materials
article

A Bioinspired Ionic Diode Tactile Sensor for Embodied Sensorimotor Intelligence in Robotics

Hengchang Bi, Kuibo Yin, Yizhou Ye, Shunbo Li, Xuefeng He, Li Shen, Xinlei Wang, Ji Jin, Peng Wan, Shu Wan, Litao Sun, Duokun Yao, Haizhou Huang
article en

Abstract

ABSTRACT The fusion of wearable sensors and embodied artificial intelligence (AI) is opening new pathways for human‐robotics interaction and personal care technologies. Biological skin relies on ion‐mediated tactile sensing while most artificial counterparts use electronic signal transduction, which creates a fundamental biointegration barrier. Here, we report a facile strategy for fabricating passive ionic diode tactile sensors as well as developing a novel fundamental understanding of the sensing mechanism, which combines semiconductor theory and charge‐induction effects. The device incorporates p‐ and n‐type ionic hydrogels separated by a nylon mesh with microchannels to form a bioinspired ionic diode. Under external pressure, the increased contact area between p‐ and n‐type ionic hydrogels enhances space charge generation, leading to charge accumulation in the electrical double layer, which produces measurable current signals. This design achieves outstanding sensing properties such as high sensitivity (1.71 kPa −1 ), fast response/recovery speed (0.2 s/0.2 s), excellent stability (>5000 cycles), and static/dynamic detection ability. Through integrating a sensor array with machine learning, accurate handwritten digit recognition (96% accuracy) has been realized. Furthermore, we attach a sensor array onto a robotic hand to recognize tracing motions during digit writing and respond with corresponding gestures mimicking human‐like context‐aware behavior.

Advanced Functional Materials
Fujian Normal University (CN), Chongqing University (CN), Southern University of Science and Technology (CN), Ministry of Education (BD), East China Normal University (CN)
National Natural Science Foundation of China, Natural Science Foundation of Chongqing
Quality Education
Openalex Percentile: Top 14%
Advanced Sensor and Energy Harvesting Materials
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