Flexible, Permeable, and Recyclable Liquid‐Metal‐Based Transient Circuit Enables Contact/Noncontact Sensing for Wearable Human–Machine Interaction

电子线路 可穿戴计算机 计算机科学 数码产品 可穿戴技术 瞬态(计算机编程) 接近传感器 接口(物质) 材料科学 电子工程 电气工程 嵌入式系统 工程类 最大气泡压力法 气泡 操作系统 并行计算
作者
Kai Zheng,Fan Gu,Hongjin Wei,Lijie Zhang,Xi’an Chen,Huile Jin,Shuang Pan,Yihuang Chen,Shun Wang
出处
期刊:Small methods [Wiley]
卷期号:7 (4) 被引量:41
标识
DOI:10.1002/smtd.202201534
摘要

Abstract The past several years have witnessed a rapid development of intelligent wearable devices. However, despite the splendid advances, the creation of flexible human–machine interfaces that synchronously possess multiple sensing capabilities, wearability, accurate responsivity, sensitive detectivity, and fast recyclability remains a substantial challenge. Herein, a convenient yet robust strategy is reported to craft flexible transient circuits via stencil printing liquid metal conductor on the water‐soluble electrospun film for human–machine interaction. Due to the inherent liquid conductor within porous substrate, the circuits feature high‐resolution, customized patterning viability, attractive permeability, excellent electroconductivity, and superior mechanical stability. More importantly, such circuits display appealing noncontact proximity capabilities while maintaining compelling tactile sensing performance, which is unattainable by traditional systems with compromised contact sensing. As such, the flexible circuit is utilized as wearable sensors with practical multifunctionality, including information transfer, smart identification, and trajectory monitoring. Furthermore, an intelligent human–machine interface composed of the flexible sensors is fabricated to realize specific goals such as wireless object control and overload alarm. The transient circuits are quickly and efficiently recycled toward high economic and environmental values. This work opens vast possibilities of generating high‐quality flexible and transient electronics for advanced applications in soft and intelligent systems.
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