色域
材料科学
显色指数
光电子学
RGB颜色模型
激光线宽
发光二极管
渲染(计算机图形)
光子
高颜色
二极管
光学
激光器
彩色图像
计算机图形学(图像)
计算机科学
人工智能
图像处理
物理
图像(数学)
操作系统
作者
Jie Liang,Yuxiang Du,Kang Wang,Ang Ren,Xinyu Dong,Chunhuan Zhang,Jin Tang,Yongli Yan,Yong Sheng Zhao
标识
DOI:10.1002/adom.202101642
摘要
Abstract Light sources with high color purity are promising for revolutionizing traditional displays because of their wide achievable color gamut, high contrast ratio, and good color saturation. The demand for next‐generation displays has driven the development of the optoelectronic materials with narrow linewidth. Until now, most optoelectronic materials usually give emission with full width at half maximum exceeding 30 nm. The lack of a general approach to further improving the color purity has limited their applications for next‐generation displays. Here, a universal resonance‐enhanced photon recycling strategy is developed to realize current‐driven displays with unprecedented high color rendering based on the perovskite light‐emitting diode (LED) arrays in distributed Bragg reflector (DBR) cavity. Benefiting from the outstanding optoelectronic properties and solution processability, perovskites are processed into micro‐LED arrays through a screen‐printing technology. The light output from individual micro‐LED is strongly modulated by resonance‐enhanced photon recycling derived from the cavity structure, leading to significant spectral narrowing and directional emission. On this basis, unprecedented high‐color‐purity is achieved in a prototype of current‐driven display panels. The outstanding performance of red, green, and blue (RGB) micro‐LED arrays with resonance‐enhanced photon recycling provides a deep insight into the design concepts and device structures for next‐generation display technology.
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