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恶劣条件下基于自修复丝基离子电子学的机器人操控。

Robotic Manipulation under Harsh Conditions Using Self-Healing Silk-Based Iontronics.

机构信息

State Key Laboratory of Transducer Technology, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai, 200050, China.

School of Graduate Study, University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Adv Sci (Weinh). 2022 Jan;9(2):e2102596. doi: 10.1002/advs.202102596. Epub 2021 Nov 5.

Abstract

Progress toward intelligent human-robotic interactions requires monitoring sensors that are mechanically flexible, facile to implement, and able to harness recognition capability under harsh environments. Conventional sensing methods have been divided for human-side collection or robot-side feedback and are not designed with these criteria in mind. However, the iontronic polymer is an example of a general method that operates properly on both human skin (commonly known as skin electronics or iontronics) and the machine/robotic surface. Here, a unique iontronic composite (silk protein/glycerol/Ca(II) ion) and supportive molecular mechanism are developed to simultaneously achieve high conductivity (around 6 kΩ at 50 kHz), self-healing (within minutes), strong stretchability (around 1000%), high strain sensitivity and transparency, and universal adhesiveness across a broad working temperature range (-40-120 °C). Those merits facilitate the development of iontronic sensing and the implementation of damage-resilient robotic manipulation. Combined with a machine learning algorithm and specified data collection methods, the system is able to classify 1024 types of human and robot hand gestures under challenging scenarios and to offer excellent object recognition with an accuracy of 99.7%.

摘要

实现智能人机交互需要监测传感器,这些传感器需要具备机械柔韧性、易于实现,并且能够在恶劣环境下利用识别能力。传统的传感方法已经分为人体侧采集或机器人侧反馈,并且没有考虑到这些标准。然而,离子聚合物是一种通用方法的例子,它在人体皮肤(通常称为皮肤电子学或离子电子学)和机器/机器人表面都能正常工作。在这里,开发了一种独特的离子复合(丝蛋白/甘油/Ca(II)离子)和支持性分子机制,以同时实现高导电性(在 50 kHz 时约为 6 kΩ)、自修复(在几分钟内)、高拉伸性(约 1000%)、高应变灵敏度和透明度,以及在很宽的工作温度范围内(-40-120°C)的通用粘性。这些优点促进了离子传感的发展和抗损伤机器人操作的实现。结合机器学习算法和指定的数据收集方法,该系统能够在具有挑战性的场景下对 1024 种人类和机器人手势进行分类,并提供出色的物体识别准确率达到 99.7%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/806a/8805592/029680a64db9/ADVS-9-2102596-g004.jpg

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