Lim Myung Sub, Nam Minwoo, Choi Seungyeop, Jeon Yongmin, Son Young Hyun, Lee Sung-Min, Choi Kyung Cheol
School of Electrical Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.
School of Materials Science and Engineering, Kookmin University, Seoul 02707, Republic of Korea.
Nano Lett. 2020 Mar 11;20(3):1526-1535. doi: 10.1021/acs.nanolett.9b03657. Epub 2020 Feb 7.
Recent advanced studies on flexible and stretchable electronic devices and optoelectronics have made possible a variety of soft and more functional electronic devices. With consumer demand for highly functional or free-form displays, high flexibility and stretchability in light-emitting devices are needed. Herein, we developed a unique structure of stretchable substrates with pillar arrays to reduce the stress on the active area of devices when strain is applied. We confirmed the advantages of the produced structures using mechanical simulation tools and determined that the structures effectively lessen the applied stress of interconnection as well as the active area in a stretched state. With this stress-relief stretchable substrate, we realized stretchable OLEDs that are compliant and maintain their performance under high strain deformation. Also, devices can be stretched in the biaxis, which is superior to only one-directional stretchable electronics; as such, devices can be used in practical applications like wearable electronics and health monitoring systems. We propose, for the first time, stretchable OLEDs patterned by the thermal evaporation fabrication process onto stress-relief substrates. These OLEDs can mitigate certain problems in previous studies of stretchable OLEDs without need to find new materials or to use a prestrained fabrication process.
近期对柔性和可拉伸电子器件及光电子学的前沿研究,使各种更柔软且功能更多样的电子器件成为可能。随着消费者对高功能或自由形状显示器的需求,发光器件需要具备高柔韧性和可拉伸性。在此,我们开发了一种具有柱状阵列的独特可拉伸基板结构,以在施加应变时降低器件有源区上的应力。我们使用机械模拟工具证实了所制备结构的优势,并确定这些结构在拉伸状态下能有效减轻互连以及有源区的外加应力。借助这种应力缓解型可拉伸基板,我们实现了可拉伸的有机发光二极管(OLED),其在高应变变形下仍能保持柔顺并维持性能。此外,器件可以在双轴方向上拉伸,这优于仅能单向拉伸的电子器件;因此,这些器件可用于诸如可穿戴电子设备和健康监测系统等实际应用中。我们首次提出了通过热蒸发制造工艺在应力缓解基板上制备图案化的可拉伸OLED。这些OLED可以缓解此前可拉伸OLED研究中的某些问题,而无需寻找新材料或采用预应变制造工艺。