Chang Sehui, Koo Ja Hoon, Yoo Jisu, Kim Min Seok, Choi Moon Kee, Kim Dae-Hyeong, Song Young Min
School of Electrical Engineering and Computer Science, Gwangju Institute of Science and Technology (GIST), Gwangju 61005, Republic of Korea.
Department of Semiconductor Systems Engineering, Sejong University, Seoul 05006, Republic of Korea.
Chem Rev. 2024 Feb 14;124(3):768-859. doi: 10.1021/acs.chemrev.3c00548. Epub 2024 Jan 19.
Optoelectronic devices with unconventional form factors, such as flexible and stretchable light-emitting or photoresponsive devices, are core elements for the next-generation human-centric optoelectronics. For instance, these deformable devices can be utilized as closely fitted wearable sensors to acquire precise biosignals that are subsequently uploaded to the cloud for immediate examination and diagnosis, and also can be used for vision systems for human-interactive robotics. Their inception was propelled by breakthroughs in novel optoelectronic material technologies and device blueprinting methodologies, endowing flexibility and mechanical resilience to conventional rigid optoelectronic devices. This paper reviews the advancements in such soft optoelectronic device technologies, honing in on various materials, manufacturing techniques, and device design strategies. We will first highlight the general approaches for flexible and stretchable device fabrication, including the appropriate material selection for the substrate, electrodes, and insulation layers. We will then focus on the materials for flexible and stretchable light-emitting diodes, their device integration strategies, and representative application examples. Next, we will move on to the materials for flexible and stretchable photodetectors, highlighting the state-of-the-art materials and device fabrication methods, followed by their representative application examples. At the end, a brief summary will be given, and the potential challenges for further development of functional devices will be discussed as a conclusion.
具有非常规外形因素的光电器件,如柔性和可拉伸发光或光响应器件,是下一代以人类为中心的光电子学的核心元件。例如,这些可变形器件可用作紧密贴合的可穿戴传感器,以获取精确的生物信号,随后将这些信号上传到云端进行即时检查和诊断,还可用于人机交互机器人的视觉系统。它们的出现得益于新型光电子材料技术和器件蓝图设计方法的突破,赋予了传统刚性光电器件灵活性和机械弹性。本文综述了此类柔性光电器件技术的进展,重点介绍了各种材料、制造技术和器件设计策略。我们将首先强调柔性和可拉伸器件制造的一般方法,包括为衬底、电极和绝缘层选择合适的材料。然后,我们将专注于柔性和可拉伸发光二极管的材料、它们的器件集成策略以及代表性应用实例。接下来,我们将转向柔性和可拉伸光电探测器的材料,突出最新的材料和器件制造方法,随后是它们的代表性应用实例。最后,将给出简要总结,并作为结论讨论功能器件进一步发展面临的潜在挑战。