钙钛矿(结构)
材料科学
光电探测器
制作
光电子学
纳米结构
实现(概率)
微晶
纳米技术
异质结
光子学
马朗戈尼效应
光子晶体
等离子体子
薄膜
纳米棒
Crystal(编程语言)
模板
作者
Mengru Zhang,Yi Hao,J. H. Zou,Ke He,Xinzhang Lin,Jingyuan Zhang,Beibei Wang,Xiaoting Liu,Kaixin Dong,Junjie Liu,Lei Jiang,Yuchen Wu,Shuang‐Quan Zang,Yanlin Song,Yingjie Zhao
标识
DOI:10.1002/ange.202509149
摘要
Abstract Patterned perovskite arrays with subwavelength nanostructures have greatly accelerated the development of high‐performance and multifunctional optoelectronic devices due to the strong light‐matter interactions. However, the fabrication of perovskite subwavelength nanostructure devices suffers from polycrystalline structure, high cost, long cycle, and low throughput, which limits the application of large‐area, high‐performance, and multifunctional devices. In this study, we innovatively report a high‐throughput and universal wafer‐scale perovskite single‐crystal arrays processing method by synergy of stencil‐assisted printing technique and fluid dynamics modulation, enabling the patterning of perovskite single‐crystal arrays with subwavelength nanostructures, tunable crystal sizes, different band gaps, and substrates. Pure crystallographic orientation, accurate positioning, and high‐quality perovskite single‐crystal arrays with subwavelength nanostructures ensure the realization of a low‐threshold and directional emission laser. Furthermore, high‐performance polarized photodetectors were demonstrated based on single‐crystal arrays with subwavelength nanostructures. This pioneering work provides a new strategy and opportunity for the wafer‐scale integration of perovskite single‐crystal functional optoelectronic devices.
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