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利用类块状纳米晶体探测无机卤化铅钙钛矿的本征光学增益特性。

Using Bulk-like Nanocrystals To Probe Intrinsic Optical Gain Characteristics of Inorganic Lead Halide Perovskites.

作者信息

Geiregat Pieter, Maes Jorick, Chen Kai, Drijvers Emile, De Roo Jonathan, Hodgkiss Justin M, Hens Zeger

机构信息

The MacDiarmid Institute for Advanced Materials and Nanotechnology , Wellington 6012 , New Zealand.

School of Chemical and Physical Sciences , Victoria University of Wellington , Wellington 6012 , New Zealand.

出版信息

ACS Nano. 2018 Oct 23;12(10):10178-10188. doi: 10.1021/acsnano.8b05092. Epub 2018 Sep 24.

Abstract

Following the introduction of perovskites for photovoltaic solar energy conversion, the use of these materials as a general purpose optoelectronic material for displays, lighting, and lasing has been explored. However, while reports on stimulated emission and lasing by perovskites show great promise, a comprehensive quantification of their optical gain characteristics is lacking. Here, we measure gain coefficients, clarify the gain mechanism, and explore the gain dynamics of colloidal CsPbBr nanocrystals by deploying a unique combination of broadband transient absorption and ultrafast fluorescence spectroscopy. Opposite from current literature, we show that optical gain in such nanocrystals is supported by stimulated emission from free carriers, and not from excitons or biexcitons. Importantly, we demonstrate that the concomitant gain coefficients and thresholds agree with literature results reported for perovksite thin films. Finally, we show that, even in the case of fully inorganic lead halide perovskites, a cooling bottleneck hampers the development of net stimulated emission at high excitation density. Based on these results, we propose that bulk-like colloidal nanocrystals in general offer a unique testbed to quantify optical gain of novel photonic materials and in particular for lead halide perovskites.

摘要

在钙钛矿被引入用于光伏太阳能转换之后,人们开始探索将这些材料用作显示器、照明和激光领域的通用光电子材料。然而,尽管关于钙钛矿受激发射和激光的报道显示出巨大潜力,但仍缺乏对其光学增益特性的全面量化。在此,我们通过部署宽带瞬态吸收和超快荧光光谱的独特组合,测量了增益系数,阐明了增益机制,并探索了胶体CsPbBr纳米晶体的增益动力学。与当前文献相反,我们表明此类纳米晶体中的光学增益是由自由载流子的受激发射支持的,而非来自激子或双激子。重要的是,我们证明了伴随的增益系数和阈值与钙钛矿薄膜的文献报道结果一致。最后,我们表明,即使在完全无机的卤化铅钙钛矿的情况下,冷却瓶颈也会阻碍在高激发密度下净受激发射的发展。基于这些结果,我们提出,一般而言,块状胶体纳米晶体为量化新型光子材料尤其是卤化铅钙钛矿的光学增益提供了一个独特的测试平台。

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