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Mode selection and high-quality upconversion lasing from perovskite CsPb2Br5 microplates

delete2020-09-01
delete28
PRE
AI
刘征征 (Zhengzheng Liu)
C
Chunwei Wang
胡智萍 (Zhiping Hu)
杜鹃 cover
杜鹃 (Juan Du)
J
Jie Yang
张泽宇 (Zeyu Zhang)
T
Tongchao Shi
W
Weimin Liu
X
Xiaosheng Tang *
冷雨欣 cover
冷雨欣 (Yuxin Leng) *
DOI:10.1364/PRJ.399960delete
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Abstract

Abstract

En 中文
In recent years, halide perovskite nanostructures have had great advances and have opened up a bright future for micro/nanolasers. However, upconversion lasing by two-photon excitation with mode selection and high quality factor in one device is still rarely reported. Herein, two lasing modes are demonstrated in the all-inorganic perovskite CsPb2Br5 microplates with subwavelength thickness and uniform square shape. The net optical gain is quickly established in less than 1 ps and persists more than 30 ps, revealed by ultrafast transient absorption spectroscopy. The temperature-dependent low-threshold amplified spontaneous emission confirms the net gain for stimulated emission with a high characteristic temperature of 403 K, far surpassing the all-inorganic CsPbBr3 semiconductor gain media. Remarkably, upconversion lasing based on two kinds of microcavity effects, Fabry-Perot and whispering-gallery modes, from the microplates at room temperature is successfully achieved with a low threshold operating in multi- or single-mode, respectively. Surprisingly, the quality factor (similar to 3551) is among the best values obtained from perovskite micro/nanoplate upconversion lasers without an external cavity. Moreover, the highly stable chromaticity with color drift only less than 0.1 nm also outbalances the all-inorganic CsPbBr3 ones. These superior performances of CsPb2Br5 microplate lasing with a facile solution synthesis procedure will offer a feasible structure to fabricate specific fimctionalities for high-performance frequency upconversion micro/nanoscale photonic integrated devices. (C) 2020 Chinese Laser Press
Keywords:
STIMULATED-EMISSION
SINGLE-MODE
NANOPLATELETS
ABSORPTION
LASERS

Journal

Photonics Research cover
Photonics Research
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7.2
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shanghai institute of optics & fine mechanics, cas
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State Key Laboratory of High Field Laser Physics
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chinese academy of sciences
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