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    AuthorChen, Jie (1)
    Du, Wenna (1)
    Hu, Xiaoyong (1)
    Liu, Xinfeng (1)
    Liu, Zhixiong (1)View MoreDepartmentLaboratory of Nano Oxides for Sustainable Energy (1)
    Materials Science and Engineering Program (1)
    Physical Sciences and Engineering (PSE) Division (1)
    JournalSmall (1)Publisher
    Wiley (1)
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    Chemical vapor deposition (1)
    Cube-corner pyramids (1)Fabry-Pérot (1)Lasing (1)
    Perovskite (1)
    View MoreTypeArticle (1)Year (Issue Date)2018 (1)Item Availability
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    Fabry-Pérot Oscillation and Room Temperature Lasing in Perovskite Cube-Corner Pyramid Cavities

    Mi, Yang; Liu, Zhixiong; Shang, Qiuyu; Niu, Xinxiang; Shi, Jia; Zhang, Shuai; Chen, Jie; Du, Wenna; Wu, Zhiyong; Wang, Rui; Qiu, Xiaohui; Hu, Xiaoyong; Zhang, Qing; Wu, Tao; Liu, Xinfeng (Small, Wiley, 2018-01-10) [Article]
    Recently, organometal halide perovskite-based optoelectronics, particularly lasers, have attracted intensive attentions because of its outstanding spectral coherence, low threshold, and wideband tunability. In this work, high-quality CH3 NH3 PbBr3 single crystals with a unique shape of cube-corner pyramids are synthesized on mica substrates using chemical vapor deposition method. These micropyramids naturally form cube-corner cavities, which are eminent candidates for small-sized resonators and retroreflectors. The as-grown perovskites show strong emission ≈530 nm in the vertical direction at room temperature. A special Fabry-Pérot (F-P) mode is employed to interpret the light confinement in the cavity. Lasing from the perovskite pyramids is observed from 80 to 200 K, with threshold ranging from ≈92 µJ cm-2 to 2.2 mJ cm-2 , yielding a characteristic temperature of T0 = 35 K. By coating a thin layer of Ag film, the threshold is reduced from ≈92 to 26 µJ cm-2 , which is accompanied by room temperature lasing with a threshold of ≈75 µJ cm-2 . This work advocates the prospect of shape-engineered perovskite crystals toward developing micro-sized optoelectronic devices and potentially investigating light-matter coupling in quantum optics.
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