Institute of Organic and Polymeric Materials, Research and Development Center of Smart Textile Technology, National Taipei University of Technology, No. 1, Sec. 3, Chung-Hsiao East Road, Taipei, 10608, Taiwan.
Department of Chemical Engineering, Delft University of Technology, Delft, 2629 HZ, Netherlands.
Adv Sci (Weinh). 2021 Nov;8(21):e2102275. doi: 10.1002/advs.202102275. Epub 2021 Sep 14.
Self-healing soft electronic material composition is crucial to sustain the device long-term durability. The fabrication of self-healing soft electronics exposed to high moisture environment is a significant challenge that has yet to be fully achieved. This paper presents the novel concept of a water-assisted room-temperature autonomous self-healing mechanism based on synergistically dynamic covalent Schiff-based imine bonds with hydrogen bonds. The supramolecular water-assisted self-healing polymer (WASHP) films possess rapid self-healing kinetic behavior and high stretchability due to a reversible dissociation-association process. In comparison with the pristine room-temperature self-healing polymer, the WASHP demonstrates favorable mechanical performance at room temperature and a short self-healing time of 1 h; furthermore, it achieves a tensile strain of 9050%, self-healing efficiency of 95%, and toughness of 144.2 MJ m . As a proof of concept, a versatile WASHP-based light-emitting touch-responsive device (WASHP-LETD) and perovskite quantum dot (PeQD)-based white LED backlight are designed. The WASHP-LETD has favorable mechanical deformation performance under pressure, bending, and strain, whereas the WASHP-PeQDs exhibit outstanding long-term stability even over a period exceeding one year in a boiling water environment. This paper provides a mechanically robust approach for producing eco-friendly, economical, and waterproof e-skin device components.
自修复软电子材料的组成对于维持器件的长期耐久性至关重要。在高湿度环境下制造自修复软电子产品是一个尚未完全实现的重大挑战。本文提出了一种基于协同动态共价席夫基亚胺键和氢键的水辅助室温自主自修复机制的新概念。基于超分子水辅助自修复聚合物 (WASHP) 薄膜具有快速的自修复动力学行为和高拉伸性,这归因于可逆的解离-缔合过程。与原始的室温自修复聚合物相比,WASHP 在室温下具有更好的机械性能和更短的自修复时间(1 h);此外,它实现了 9050%的拉伸应变、95%的自修复效率和 144.2 MJ m 的韧性。作为概念验证,设计了一种基于多功能 WASHP 的发光触摸响应器件 (WASHP-LETD) 和基于钙钛矿量子点 (PeQD) 的白色 LED 背光灯。WASHP-LETD 在压力、弯曲和应变下具有良好的机械变形性能,而 WASHP-PeQDs 即使在沸水环境中超过一年的时间也表现出出色的长期稳定性。本文为生产环保、经济且防水的电子皮肤器件组件提供了一种机械坚固的方法。