通过机器学习实现超灵敏人机交互传感的柔性抗菌可降解生物弹性体纳米复合材料

IF 13.9 Q1 CHEMISTRY, MULTIDISCIPLINARY
Zihong Fu, Mingcheng Wang, Chenlin Huang, Zehui Li, Yue Yuan, Shikai Hu, Liqun Zhang, Pengbo Wan
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引用次数: 0

摘要

柔性可穿戴设备在个人人体运动传感、智能疾病诊断和多功能电子皮肤方面引起了广泛关注。然而,已报道的柔性传感器大多检测范围窄、灵敏度低、可降解性有限,加剧了大量电子垃圾对环境的污染,而且抗菌性能差,难以改善长期佩戴后皮肤的不适感和细菌滋生引起的皮肤炎症。在此,我们从具有高灵敏触觉特性的人体皮肤中汲取生物灵感,利用棘状微结构放大表皮和真皮之间的传感灵敏度,制备了一种可降解抗菌可穿戴电子元件,该电子元件采用可降解弹性体基底,其上的棘状微结构模板来自荷叶,并与相互咬合的电极组装在一起。这种可降解弹性体易于获得,其模量可调,与人体皮肤的模量相匹配,亲水性更好,可快速降解。获得的传感器具有超低检测限(0.2 Pa)、更高的灵敏度(高达 540.2 kPa-1)、出色的循环稳定性(23,000 次循环)、宽检测范围、强降解性和出色的抗菌能力。在机器学习的帮助下,从志愿者手指上的集成传感器收集到的传感信号到相关的美国手语都能被有效识别,准确率高达 99%,显示了无线人体运动传感和智能机器学习支持的人机交互的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Flexible antibacterial degradable bioelastomer nanocomposites for ultrasensitive human–machine interaction sensing enabled by machine learning

Flexible antibacterial degradable bioelastomer nanocomposites for ultrasensitive human–machine interaction sensing enabled by machine learning

Flexible antibacterial degradable bioelastomer nanocomposites for ultrasensitive human–machine interaction sensing enabled by machine learning

Flexible wearables have attracted extensive interests for personal human motion sensing, intelligent disease diagnosis, and multifunctional electronic skins. However, the reported flexible sensors, mostly exhibited narrow detection range, low sensitivity, limited degradability to aggravate environmental pollution from vast electronic wastes, and poor antibacterial performance to hardly improve skin discomfort and skin inflammation from bacterial growth under long-term wearing. Herein, bioinspired from human skin featuring highly sensitive tactile sensation with spinous microstructures for amplifying sensing sensitivity between epidermis and dermis, a wearable antibacterial degradable electronics is prepared from degradable elastomeric substrate with MXene-coated spinous microstructures templated from lotus leaf assembled with the interdigitated electrode. The degradable elastomer is facilely obtained with tunable modulus to match the modulus of human skin with improved hydrophilicity for rapid degradation. The as-obtained sensor displays ultra-low detection limit (0.2 Pa), higher sensitivity (up to 540.2 kPa−1), outstanding cycling stability (>23,000 cycles), a wide detection range, robust degradability, and excellent antibacterial capability. Facilitated by machine learning, the collected sensing signals from the integrated sensors on volunteer's fingers to the related American Sign Language are effectively recognized with an accuracy up to 99%, showing excellent potential in wireless human movement sensing and smart machine learning-enabled human–machine interaction.

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CiteScore
17.40
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