纳米制造
生物电子学
洁净室
数码产品
纳米技术
计算机科学
可穿戴计算机
石墨烯
材料科学
无线
柔性电子器件
嵌入式系统
生物传感器
电气工程
工程类
电信
作者
Young‐Tae Kwon,Yun‐Soung Kim,Shinjae Kwon,Musa Mahmood,Hyo‐Ryoung Lim,Si-Woo Park,Sung‐Oong Kang,Jeongmoon J. Choi,Robert Herbert,Young C. Jang,Yong‐Ho Choa,Woon‐Hong Yeo
标识
DOI:10.1038/s41467-020-17288-0
摘要
Abstract Recent advances in nanomaterials and nano-microfabrication have enabled the development of flexible wearable electronics. However, existing manufacturing methods still rely on a multi-step, error-prone complex process that requires a costly cleanroom facility. Here, we report a new class of additive nanomanufacturing of functional materials that enables a wireless, multilayered, seamlessly interconnected, and flexible hybrid electronic system. All-printed electronics, incorporating machine learning, offers multi-class and versatile human-machine interfaces. One of the key technological advancements is the use of a functionalized conductive graphene with enhanced biocompatibility, anti-oxidation, and solderability, which allows a wireless flexible circuit. The high-aspect ratio graphene offers gel-free, high-fidelity recording of muscle activities. The performance of the printed electronics is demonstrated by using real-time control of external systems via electromyograms. Anatomical study with deep learning-embedded electrophysiology mapping allows for an optimal selection of three channels to capture all finger motions with an accuracy of about 99% for seven classes.
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