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基于摩擦电效应的仿生双模触觉感知

Biomimetic bimodal haptic perception using triboelectric effect.

机构信息

Thrust of Sustainable Energy and Environment, The Hong Kong University of Science and Technology (Guangzhou), Nansha, Guangzhou 511400, Guangdong, China.

Medical School, Chinese PLA, Fuxing Road 28, Beijing 100853, China.

出版信息

Sci Adv. 2024 Jul 5;10(27):eado6793. doi: 10.1126/sciadv.ado6793.

Abstract

Multimodal haptic perception is essential for enhancing perceptual experiences in augmented reality applications. To date, several artificial tactile interfaces have been developed to perceive pressure and precontact signals, while simultaneously detecting object type and softness with quantified modulus still remains challenging. Here, inspired by the campaniform sensilla on insect antennae, we proposed a hemispherical bimodal intelligent tactile sensor (BITS) array using the triboelectric effect. The system is capable of softness identification, modulus quantification, and material type recognition. In principle, due to the varied deformability of materials, the BITS generates unique triboelectric output fingerprints when in contact with the tested object. Furthermore, owing to the different electron affinities, the BITS array can accurately recognize material type (99.4% accuracy), facilitating softness recognition (100% accuracy) and modulus quantification. It is promising that the BITS based on the triboelectric effect has the potential to be miniaturized to provide real-time accurate haptic information as an artificial antenna toward applications of human-machine integration.

摘要

多模态触觉感知对于增强增强现实应用中的感知体验至关重要。迄今为止,已经开发出几种人工触觉接口来感知压力和预接触信号,而同时用定量模量检测物体类型和柔软度仍然具有挑战性。在这里,受昆虫触角上的钟形感觉器的启发,我们使用摩擦电效应提出了一种半球形双模智能触觉传感器 (BITS) 阵列。该系统能够进行柔软度识别、模量量化和材料类型识别。从原理上讲,由于材料的可变形性不同,BITS 在与被测物体接触时会产生独特的摩擦电输出指纹。此外,由于不同的电子亲合能,BITS 阵列可以准确识别材料类型(准确率为 99.4%),有助于进行柔软度识别(准确率为 100%)和模量量化。基于摩擦电效应的 BITS 有望小型化,为机器集成应用提供实时准确的触觉信息,作为人工天线。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/21ea/11225791/32dc144a9d93/sciadv.ado6793-f1.jpg

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