可重构性
材料科学
可穿戴计算机
软机器人
基质(水族馆)
纳米技术
可伸缩电子设备
数字光处理
3D打印
柔性电子器件
可穿戴技术
计算机科学
过程(计算)
微执行器
数码产品
嵌入式系统
电气工程
人工智能
机器人
执行机构
工程类
电信
海洋学
投影机
复合材料
地质学
操作系统
作者
Hyeongjin Jo,Yujun Song,Danbi Lee,Youn‐Jung Kang,Jungho Ahn,Ji‐Hyeon Song
标识
DOI:10.1002/adfm.202306160
摘要
Abstract Stretchable sensors that utilize machine‐assisted printing techniques afford significant benefits in terms of both bulk and output uniformities. These sensors have found extensive utility across diverse fields, such as wearables, robotics, and biomedical applications. However, existing printed sensor systems, once printed, are limited in their model variations and are heavily dependent on passive materials owing to their substrate‐bound nature. In this study, a printed sensor that utilizes a substrate–sensor isolation strategy is reported, thereby allowing size and design reconfigurability and a Lego‐like assembly. This approach enables device customization through post‐design modifications of specific sensing targets. The electrohydrodynamic printing process is utilized for sensor production, offering a high electrical bias between the substrate and nozzle during printing; this enables in situ dipole alignment, eliminating the need for a separate poling process. The mechanical and electrical stabilities of the sensors are assessed by cyclic testing at 50% strain for 1200 cycles. To illustrate the practical applications of these sensor models, sensors are implemented in wearable and in vivo biomedical applications.
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