材料科学
金属有机骨架
光子学
无定形固体
纳米技术
失真(音乐)
光电子学
微观结构
质量(理念)
拓扑(电路)
激光阈值
复合材料
结晶学
化学
物理
放大器
工程类
波长
有机化学
CMOS芯片
吸附
量子力学
电气工程
作者
Zhenhua Gao,Baoyuan Xu,Yuqing Fan,Tongjin Zhang,Shunwei Chen,Shuo Yang,Weiguang Zhang,Xun Sun,Yanhui Wei,Zifei Wang,Xue Wang,Xiangeng Meng,Yong Sheng Zhao
标识
DOI:10.1002/ange.202014033
摘要
Abstract Metal‐organic frameworks (MOFs) have recently emerged as appealing platforms to construct microlasers owing to their compelling characters combining the excellent stability of inorganic materials and processable characters of organic materials. However, MOF microstructures developed thus far are generally composed of multiple edge boundaries due to their crystalline nature, which consequently raises significant scattering losses that are detrimental to lasing performance. In this work, we propose a strategy to overcome the above drawback by designing spherically shaped MOFs microcavities. Such spherical MOF microstructures are constructed by amorphizing MOFs with a topological distortion network through introducing flexible building blocks into the growth environment. With an ultra‐smooth surface and excellent circular boundaries, the acquired spherical microcavities possess a Q factor as high as ≈10 4 and can provide sufficient feedback for high‐quality single‐mode lasing oscillations. We hope that these results will pave an avenue for the construction of new types of flexible MOF‐based photonic components.
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