材料科学
钙钛矿(结构)
卤化物
通量
超短脉冲
化学物理
相(物质)
激发
受激发射
薄膜
量子点
自发辐射
量子
相变
光电子学
金属
铯
放大自发辐射
发射光谱
跟踪(心理语言学)
纳米技术
光发射
纳米晶
量子效率
兴奋剂
作者
Yue Tang,H. Ching,G. T. Ong,Chandramouli Kulshreshtha,Zengshan Xing,Herlina Arianita Dewi,Luke R. W. White,Kelvin Jiunn‐Ming How,L. C. Kwek,Tze Chien Sum,Subodh G. Mhaisalkar,Annalisa Bruno
标识
DOI:10.1002/adma.202518842
摘要
Superfluorescence (SF) is a cooperative quantum emission process characterized by intense, ultrafast bursts of light, with promising applications in quantum photonics. In solid-state systems, SF typically requires cryogenic conditions, with quasi-2D hybrid metal halide perovskites being a notable exception where room-temperature SF has been reported. However, the mechanisms enabling high-temperature SF in these materials remain poorly understood, and the distinction between SF and amplified spontaneous emission (ASE) is often overlooked. Here, SF in hybrid quasi-2D perovskite phenylbutylammonium cesium lead bromide (PBA:CsPbBr3) is reported with the lowest threshold fluence recorded to date in perovskites, observed across 78-180 K. The phase behavior of emission under varying temperature and excitation fluence is mapped, identifying transitions between SF, ASE, and spontaneous emission regimes. A simple ab-initio model has been developed to predict the emission density, correlation, and trace distance for understanding the cooperative phenomena and the unified theory of SF and ASE. The analysis reveals the underlying dynamics that differentiate cooperative from non-cooperative emission, offering new insight into light-matter interactions in perovskites. These findings deepen the understanding of SF in solid-state systems and inform the design of quantum optical materials operable at elevated temperatures.
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