Shin Yoo Bin, Ju Yun Hee, Lee Hee-Jin, Han Chul Jong, Lee Cheul-Ro, Kim Youngmin, Kim Jong-Woong
School of Advanced Materials Engineering, Jeonbuk National University, 567 Baekje-daero, Deokjin-gu, Jeonju 54896, Republic of Korea.
Display Research Center, Korea Electronics Technology Institute, Seongnam 13509, Republic of Korea.
ACS Appl Mater Interfaces. 2020 Mar 4;12(9):10949-10958. doi: 10.1021/acsami.9b21789. Epub 2020 Feb 21.
Reversible bonding between polymer chains has been used primarily to induce self-healing of damaged polymers. Inspired by the dynamic nature of such bonding, we have developed a polyurethane equipped with dynamic urea bonds (PEDUB) that has high strength sufficient to make it be freestanding and have a healing capability and self-bonding property. This allowed subsequent heterogeneous multicomponent device integration of electrodes/substrate and light-emitting pixels into a light-emitting device. We first used the PEDUB to individually fabricate a highly stretchable electrode containing Ag nanowires and stretchable composites with ZnS-based particles. They were successfully assembled into a stretchable, waterproof electroluminescent (EL) device even under mild conditions (60 °C for 10 min) owing to the reversible exchange of urea bonds and low glass transition temperature of PEDUB. The assembled device with an AC-driven EL architecture retained excellent EL characteristics even after stretching, submersion in water, and cutting owing to the robust solid-state bonding interfaces induced by the dynamic urea bonds. Consequently, various shapes of the illuminating elastomer and an illuminated picture were realized for the first time using the mosaic-like assembly method. This first demonstration of multicomponent assembly paves the way for future stretchable multifunctional devices.
聚合物链之间的可逆键合主要用于诱导受损聚合物的自修复。受这种键合动态性质的启发,我们开发了一种配备动态脲键的聚氨酯(PEDUB),其具有足够高的强度,使其能够独立存在,并具有愈合能力和自粘合特性。这使得随后能够将电极/基板和发光像素进行异质多组分器件集成到发光器件中。我们首先使用PEDUB分别制造了一种含有银纳米线的高拉伸性电极和含硫化锌基颗粒的可拉伸复合材料。由于脲键的可逆交换和PEDUB的低玻璃化转变温度,即使在温和条件下(60℃,10分钟),它们也成功组装成了可拉伸、防水的电致发光(EL)器件。具有交流驱动EL结构的组装器件即使在拉伸、浸入水中和切割后,由于动态脲键诱导的坚固固态键合界面,仍保留了优异的EL特性。因此,首次使用类似镶嵌的组装方法实现了各种形状的发光弹性体和一幅发光图片。这种多组分组装的首次展示为未来的可拉伸多功能器件铺平了道路。