State Key Laboratory of Reliability and Intelligence of Electrical Equipment, School of Health Sciences and Biomedical Engineering, Hebei University of Technology, Tianjin, 300130, China.
State Key Laboratory for Reliability and Intelligence of Electrical Equipment, Hebei Key Laboratory of Smart Sensing and Human-Robot Interaction, School of Mechanical Engineering, Hebei University of Technology, Tianjin, 300401, China.
Adv Mater. 2023 Apr;35(15):e2207742. doi: 10.1002/adma.202207742. Epub 2023 Mar 3.
Soft, deformable electronic devices provide the means to monitor physiological information and health conditions for disease diagnostics. However, their practical utility is limited due to the lack of intrinsical thermal switching for mechanically transformative adaptability and self-healing capability against mechanical damages. Here, the design concepts, materials and physics, manufacturing approaches, and application opportunities of self-healing, reconfigurable, thermal-switching device platforms based on hyperbranched polymers and biphasic liquid metal are reported. The former provides excellent self-healing performance and unique tunable stiffness and adhesion regulated by temperature for the on-skin switch, whereas the latter results in liquid metal circuits with extreme stretchability (>900%) and high conductivity (3.40 × 10 S cm ), as well as simple recycling capability. Triggered by the increased temperature from the skin surface, a multifunctional device platform can conveniently conform and strongly adhere to the hierarchically textured skin surface for non-invasive, continuous, comfortable health monitoring. Additionally, the self-healing and adhesive characteristics allow multiple multifunctional circuit components to assemble and completely wrap on 3D curvilinear surfaces. Together, the design, manufacturing, and proof-of-concept demonstration of the self-healing, transformative, and self-assembled electronics open up new opportunities for robust soft deformable devices, smart robotics, prosthetics, and Internet-of-Things, and human-machine interfaces on irregular surfaces.
软性、可变形的电子设备为监测生理信息和健康状况以进行疾病诊断提供了手段。然而,由于缺乏内在的热开关来实现机械变形适应性和对机械损伤的自修复能力,它们的实际应用受到限制。在这里,报告了基于超支化聚合物和双相液态金属的自修复、可重构、热开关器件平台的设计理念、材料和物理、制造方法以及应用机会。前者为皮肤开关提供了出色的自修复性能和独特的可调刚度和温度调节的附着力,而后者则导致具有极高拉伸性(>900%)和高导电性(3.40×10 S cm )的液态金属电路,以及简单的回收能力。在皮肤表面温度升高的触发下,多功能器件平台可以方便地顺应并牢固地附着在具有层次结构的皮肤表面上,从而实现非侵入式、连续、舒适的健康监测。此外,自修复和粘附特性允许多个多功能电路组件组装并完全包裹在 3D 曲面上。总的来说,自修复、变形和自组装电子产品的设计、制造和概念验证演示为坚固的软变形设备、智能机器人技术、假肢和物联网以及不规则表面上的人机界面开辟了新的机会。