Kim Kiwook, Kim Dong Ryong, Kim Dohyeon, Song Hyeon Hwa, Lee Seungmin, Choi Yonghoon, Lee Kyunghoon, Lee Gwang Heon, Lee Jinhee, Kim Hye Hyun, Ahn Eonhyoung, Jang Jae Hong, Kim Yaewon, Lee Hyo Cheol, Kim Yunho, Park Soo Ik, Yoo Jisu, Lee Youngsik, Park Jongnam, Kim Dae-Hyeong, Choi Moon Kee, Yang Jiwoong
Department of Energy Science and Engineering, Daegu Gyeongbuk Institute of Science and Technology (DGIST), Daegu, 42988, Republic of Korea.
Graduate School of Semiconductor Materials and Devices Engineering, Center for Future Semiconductor Technology (FUST), Ulsan National Institute of Science and Technology (UNIST), Ulsan, 44919, Republic of Korea.
Adv Mater. 2025 Aug;37(32):e2420633. doi: 10.1002/adma.202420633. Epub 2025 May 6.
Stretchable displays are essential components as signal outputs in next-generation stretchable electronics, particularly for robotic skin and wearable device technologies. Intrinsically-stretchable and patternable color conversion layers (CCLs) offer practical solutions for developing full-color stretchable micro-light-emitting diode (LED) displays. However, significant challenges remain in creating stretchable and patternable CCLs without backlight leakage under mechanical deformation. Here, a novel material strategy for stretchable and patternable heavy-metal-free quantum dot (QD) CCLs, potentially useful for robotic skin and wearable electronics is presented. Through a versatile crosslinking technique, uniform and high-concentration QD loading in the elastomeric polydimethylsiloxane matrix without loss of optical properties is achieved. These CCLs demonstrate excellent color conversion capabilities with minimal backlight leakage, even under 50% tensile strain. Additionally, fine-pixel patterning process with resolutions up to 300 pixels per inch is compatible with the QD CCLs, suitable for high-resolution stretchable display applications. The integration of these CCLs with micro-LED displays is also demonstrated, showcasing their use in haptic-responsive robotic skin and wearable healthcare monitoring sensors. This study offers a promising material preparation methodology for stretchable QDs/polymer composites and highlights their potential for advancing flexible and wearable light-emitting devices.
可拉伸显示器是下一代可拉伸电子产品中作为信号输出的关键组件,特别是对于机器人皮肤和可穿戴设备技术而言。本征可拉伸且可图案化的颜色转换层(CCL)为开发全彩可拉伸微发光二极管(LED)显示器提供了切实可行的解决方案。然而,在机械变形下创建无背光泄漏的可拉伸且可图案化的CCL仍存在重大挑战。在此,提出了一种用于可拉伸且可图案化的无重金属量子点(QD)CCL的新型材料策略,这对机器人皮肤和可穿戴电子产品可能有用。通过一种通用的交联技术,在弹性聚二甲基硅氧烷基质中实现了均匀且高浓度的量子点负载,同时不损失光学性能。这些CCL即使在50%的拉伸应变下也能展现出优异的颜色转换能力,且背光泄漏最小。此外,分辨率高达每英寸300像素的精细像素图案化工艺与量子点CCL兼容,适用于高分辨率可拉伸显示应用。还展示了这些CCL与微LED显示器的集成,展示了它们在触觉响应机器人皮肤和可穿戴医疗监测传感器中的应用。这项研究为可拉伸量子点/聚合物复合材料提供了一种有前景的材料制备方法,并突出了它们在推进柔性和可穿戴发光器件方面的潜力。