材料科学
自愈水凝胶
软机器人
制作
电子皮肤
纳米技术
自愈
导电体
可伸缩电子设备
3D打印
触觉传感器
可穿戴技术
灵敏度(控制系统)
数码产品
可穿戴计算机
复合材料
执行机构
计算机科学
电子工程
电气工程
医学
替代医学
工程类
病理
人工智能
高分子化学
机器人
嵌入式系统
作者
Giorgio Mogli,Marco Reina,Annalisa Chiappone,Andrea Lamberti,Candido Fabrizio Pirri,Ignazio Roppolo,Stefano Stassi
标识
DOI:10.1002/adfm.202307133
摘要
Abstract Self‐healing ionic conductive hydrogels have shown significant potential in applications like wearable electronics, soft robotics, and prosthetics because of their high strain sensitivity and mechanical and electrical recovery after damage. Despite the enormous interest in these materials, conventional fabrication techniques hamper their use in advanced devices since only limited geometries can be obtained, preventing proper conformability to the complexity of human or robotic bodies. Here, a photocurable hydrogel with excellent sensitivity to mechanical deformations based on a semi‐interpenetrating polymeric network is reported, which holds remarkable mechanical properties (ultimate tensile strain of 550%) and spontaneous self‐healing capabilities, with complete recovery of its strain sensitivity after damages. Furthermore, the developed material can be processed by digital light processing 3D printing technology to fabricate complex‐shaped strain sensors, increasing mechanical stress sensitivity with respect to simple sensor geometries, reaching an exceptional pressure detection limit below 1 Pa. Additionally, the hydrogel is used as an electrolyte in the fabrication of a laser‐induced graphene‐based supercapacitor, then incorporated into a 3D‐printed sensor to create a self‐powered, fully integrated device. These findings demonstrate that by using 3D printing, it is possible to produce multifunctional, self‐powered sensors, appropriately shaped depending on the various applications, without the use of bulky batteries.
科研通智能强力驱动
Strongly Powered by AbleSci AI