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用于可拉伸电子器件的导电水凝胶-弹性体复合材料的3D打印

3D Printing of Conductive Hydrogel-Elastomer Hybrids for Stretchable Electronics.

作者信息

Zhu Heng, Hu Xiaocheng, Liu Binhong, Chen Zhe, Qu Shaoxing

机构信息

State Key Laboratory of Fluid Power & Mechatronic System, Key Laboratory of Soft Machines and Smart Devices of Zhejiang Province, Center for X-Mechanics, Department of Engineering Mechanics, Zhejiang University, Hangzhou 310027, China.

出版信息

ACS Appl Mater Interfaces. 2021 Dec 15;13(49):59243-59251. doi: 10.1021/acsami.1c17526. Epub 2021 Dec 6.

Abstract

Electronically conductive hydrogels integrated with dielectric elastomers show great promise in a wide range of applications, such as biomedical devices, soft robotics, and stretchable electronics. However, one big conundrum that impedes the functionality and performance of hydrogel-elastomer-based devices lies in the strict demands of device integration and the requirements for devices with satisfactory mechanical and electrical properties. Herein, the digital light processing three-dimensional (3D) printing method is used to fabricate 3D functional devices that bridge submillimeter-scale device resolution to centimeter-scale object size and simultaneously realize complex hybrid structures with strong adhesion interfaces and desired functionalities. The interconnected poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) network endows the PAAm hydrogel with high conductivity and superior electrical stability and poly(2-hydroxyethyl acrylate) functions as an insulating medium. The strong interfacial bonding between the hydrogel and elastomer is achieved by incomplete photopolymerization that ensures the stability of the hybrid structure. Lastly, applications of stretchable electronics illustrated as 3D-printed electroluminescent devices and 3D-printed capacitive sensors are conceptually demonstrated. This strategy will open up avenues to fabricate conductive hydrogel-elastomer hybrids in next-generation multifunctional stretchable electronics.

摘要

集成介电弹性体的导电水凝胶在生物医学设备、软体机器人和可拉伸电子等广泛应用中显示出巨大潜力。然而,阻碍基于水凝胶-弹性体的设备功能和性能的一个大难题在于设备集成的严格要求以及对具有令人满意的机械和电气性能的设备的需求。在此,采用数字光处理三维(3D)打印方法制造3D功能设备,该方法将亚毫米级设备分辨率与厘米级物体尺寸联系起来,同时实现具有强粘附界面和所需功能的复杂混合结构。相互连接的聚(3,4-乙撑二氧噻吩)聚苯乙烯磺酸盐(PEDOT:PSS)网络赋予聚丙烯酰胺水凝胶高导电性和卓越的电稳定性,聚(丙烯酸-2-羟乙酯)用作绝缘介质。水凝胶与弹性体之间的强界面结合是通过不完全光聚合实现的,这确保了混合结构的稳定性。最后,从概念上展示了作为3D打印电致发光器件和3D打印电容式传感器的可拉伸电子器件的应用。该策略将为在下一代多功能可拉伸电子器件中制造导电水凝胶-弹性体混合物开辟道路。

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