Bioinspired Passive Tactile Sensors Enabled by Reversible Polarization of Conjugated Polymers

材料科学 触觉传感器 聚苯胺 触觉知觉 纳米技术 计算机科学 共轭体系 导电聚合物 感知 聚合物 机器人 光电子学 人工智能 神经科学 复合材料 生物 聚合
作者
Feng He,Sitong Chen,Ruili Zhou,Hanyu Diao,Yangyang Han,Xiaodong Wu
出处
期刊:Nano-micro Letters [Springer Nature]
卷期号:17 (1)
标识
DOI:10.1007/s40820-024-01532-z
摘要

Abstract Tactile perception plays a vital role for the human body and is also highly desired for smart prosthesis and advanced robots. Compared to active sensing devices, passive piezoelectric and triboelectric tactile sensors consume less power, but lack the capability to resolve static stimuli. Here, we address this issue by utilizing the unique polarization chemistry of conjugated polymers for the first time and propose a new type of bioinspired, passive, and bio-friendly tactile sensors for resolving both static and dynamic stimuli. Specifically, to emulate the polarization process of natural sensory cells, conjugated polymers (including poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate), polyaniline, or polypyrrole) are controllably polarized into two opposite states to create artificial potential differences. The controllable and reversible polarization process of the conjugated polymers is fully in situ characterized. Then, a micro-structured ionic electrolyte is employed to imitate the natural ion channels and to encode external touch stimulations into the variation in potential difference outputs. Compared with the currently existing tactile sensing devices, the developed tactile sensors feature distinct characteristics including fully organic composition, high sensitivity (up to 773 mV N −1 ), ultralow power consumption (nW), as well as superior bio-friendliness. As demonstrations, both single point tactile perception (surface texture perception and material property perception) and two-dimensional tactile recognitions (shape or profile perception) with high accuracy are successfully realized using self-defined machine learning algorithms. This tactile sensing concept innovation based on the polarization chemistry of conjugated polymers opens up a new path to create robotic tactile sensors and prosthetic electronic skins.
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