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具有巨大非线性吸收和天然微腔的二维同系Ruddlesden-Popper钙钛矿的双光子激光发射

Two-Photon Lasing from Two-Dimensional Homologous Ruddlesden-Popper Perovskite with Giant Nonlinear Absorption and Natural Microcavities.

作者信息

Gao Wei, Wei Qi, Wang Ting, Xu Jiangtao, Zhuang Lyuchao, Li Mingjie, Yao Kai, Yu Siu Fung

机构信息

Department of Applied Physics, The Hong Kong Polytechnic University, Kowloon, Hong Kong, China.

Shenzhen Research Institute, The Hong Kong Polytechnic University, Shenzhen 518060, China.

出版信息

ACS Nano. 2022 Aug 23;16(8):13082-13091. doi: 10.1021/acsnano.2c05726. Epub 2022 Aug 15.

Abstract

Two-dimensional Ruddlesden-Popper perovskites (RPPs) with multiple quantum well-like structures, strong excitonic quantum confinement, and high stability are promising optical gain media. However, the lasing from such material with a small number of inorganic well layers is difficult to achieve. Herein, we demonstrate the low-threshold upconversion lasing from the homologous RPP (PEA)(MA)PbI ( = 2 and 3) microflakes with wavelength varies from 598 to 637 nm under 800 nm laser excitation at low temperature (≤153 K). Using the micro -scan technique, we discovered that the RPP flakes have a giant two-photon absorption coefficient as high as 3.6 × 10 cm GW, resulting in the effective upconversion transition under two-photon excitation. Furthermore, the self-formation of Fabry-Pérot microcavities provides the support for lasing emission from the ≥ 2 RPP flakes. Calculation results and microscopic transient absorption measurements reveal that low-threshold lasing is due to the high differential gain coefficient and the suppressed nonradiative Auger recombination rate inside the quantum confinement structures. These properties enable RPPs as potential gain media for developing upconversion microcavity lasers.

摘要

具有多量子阱状结构、强激子量子限制和高稳定性的二维鲁德尔斯登-波珀钙钛矿(RPPs)是很有前途的光学增益介质。然而,从这种具有少量无机阱层的材料中实现激光发射是困难的。在此,我们展示了在低温(≤153K)下,在800nm激光激发下,来自同源RPP(PEA)(MA)PbI( = 2和3)微片的低阈值上转换激光发射,其波长在598至637nm之间变化。使用微扫描技术,我们发现RPP微片具有高达3.6×10 cm GW的巨大双光子吸收系数,导致在双光子激发下的有效上转换跃迁。此外,法布里-珀罗微腔的自形成支持了≥2的RPP微片的激光发射。计算结果和微观瞬态吸收测量表明,低阈值激光发射是由于量子限制结构内的高分光增益系数和抑制的非辐射俄歇复合率。这些特性使RPPs成为开发上转换微腔激光器的潜在增益介质。

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