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将飞秒瞬态吸收显微镜与空间共定位的时间平均光学成像模式连接起来。

Connecting Femtosecond Transient Absorption Microscopy with Spatially Coregistered Time Averaged Optical Imaging Modalities.

机构信息

Chemical Sciences Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831, United States.

Department of Electrical Engineering and Computer Science, University of Tennessee, Knoxville, Tennessee 37996, United States.

出版信息

J Phys Chem A. 2020 May 14;124(19):3915-3923. doi: 10.1021/acs.jpca.9b11996. Epub 2020 May 1.

Abstract

Multimodal all-optical imaging involving coregistered femtosecond transient absorption microscopy (TAM), time-integrated photoluminescence (PL), and steady-state modalities such as confocal reflectance and transmission offers an appealing approach to gain a comprehensive understanding of complex electronic excited-state phenomena in spatially heterogeneous systems. A unique combination of these modalities allows us to unravel not only the competing electronic excited-state dynamical processes but also the underlying morphological information with simultaneous high temporal and spatial resolution. However, correlating the various images obtained from time-resolved and time-independent modalities is generally nontrivial and particularly challenging when the electronic dynamics under study evolve in both time and space. Here, we demonstrate a new approach for rationally correlating time-resolved microscopy with coregistered time-integrated or steady-state modalities. Specifically, our approach involves an extended global lifetime analysis of the time-resolved microscopic data set to separate distinct dynamical processes taking place on commensurate time scales, and the resulting decay-associated amplitude maps (DAAMs) were applied to explore correlations with the images acquired using time-independent modalities. The feasibility of our approach was validated through analyzing a multimodal data set acquired from a thin film of chloride-containing mixed lead halide perovskites (CHNHPbICl) using femtosecond transient absorption, time-integrated PL, and confocal reflectance microscopies. Analysis of the results obtained enable us to gain new insight into the complex ultrafast relaxation dynamics in this highly heterogeneous system.

摘要

涉及共配准飞秒瞬态吸收显微镜 (TAM)、时间积分光致发光 (PL) 和稳态模态(如共聚焦反射和透射)的多模态全光学成像是一种很有吸引力的方法,可以全面了解空间不均匀系统中复杂的电子激发态现象。这些模态的独特组合不仅使我们能够揭示竞争的电子激发态动力学过程,而且还能够同时获得高时空分辨率的潜在形态信息。然而,通常情况下,将来自时间分辨和非时间分辨模态的各种图像进行关联并不简单,尤其是在研究中的电子动力学在时间和空间上都在演变时。在这里,我们展示了一种用于合理关联时间分辨显微镜与共配准时间积分或稳态模态的新方法。具体来说,我们的方法涉及对时间分辨微观数据集进行扩展的全局寿命分析,以分离在相应时间尺度上发生的不同动力学过程,并且将得到的衰减相关幅度图 (DAAM) 应用于探索与使用非时间分辨模态获得的图像的相关性。我们通过使用飞秒瞬态吸收、时间积分 PL 和共聚焦反射显微镜分析从含有氯化物的混合铅卤钙钛矿 (CHNHPbICl) 薄膜获得的多模态数据集来验证我们方法的可行性。对所得结果的分析使我们能够深入了解这个高度不均匀系统中的复杂超快弛豫动力学。

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