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使用瞬态吸收测量钙钛矿纳米晶体生长过程中的动态斯塔克效应。

Evolving Stark Effect During Growth of Perovskite Nanocrystals Measured Using Transient Absorption.

作者信息

Sadighian James C, Wilson Kelly S, Crawford Michael L, Wong Cathy Y

机构信息

Department of Chemistry and Biochemistry, University of Oregon, Eugene, OR, United States.

Oregon Center for Optical, Molecular, and Quantum Science, University of Oregon, Eugene, OR, United States.

出版信息

Front Chem. 2020 Oct 15;8:585853. doi: 10.3389/fchem.2020.585853. eCollection 2020.

Abstract

Methylammonium lead triiodide (MAPbI) nanocrystals (NCs) are emerging materials for a range of optoelectronic applications. Photophysical characterization is typically limited to structurally stable NCs owing to the long timescales required for many spectroscopies, preventing the accurate measurement of NCs during growth. This is a particular challenge for non-linear spectroscopies such as transient absorption. Here we report on the use of a novel single-shot transient absorption (SSTA) spectrometer to study MAPbI NCs as they grow. Comparing the transient spectra to derivatives of the linear absorbance reveals that photogenerated charge carriers become localized at surface trap states during NC growth, inducing a TA lineshape characteristic of the Stark effect. Observation of this Stark signal shows that the contribution of trapped carriers to the TA signal declines as growth continues, supporting a growth mechanism with increased surface ligation toward the end of NC growth. This work opens the door to the application of time-resolved spectroscopies to NCs , during their synthesis, to provide greater insight into their growth mechanisms and the evolution of their photophysical properties.

摘要

甲基碘化铅三甲铵(MAPbI)纳米晶体(NCs)是一系列光电子应用中正在兴起的材料。由于许多光谱技术需要较长的时间尺度,光物理表征通常仅限于结构稳定的纳米晶体,这使得在纳米晶体生长过程中无法对其进行精确测量。对于诸如瞬态吸收等非线性光谱技术而言,这是一个特别的挑战。在此,我们报告了使用一种新型的单次瞬态吸收(SSTA)光谱仪来研究生长过程中的MAPbI纳米晶体。将瞬态光谱与线性吸光度的导数进行比较,结果表明,在纳米晶体生长过程中,光生电荷载流子会定位于表面陷阱态,从而产生斯塔克效应的瞬态吸收线形特征。对这种斯塔克信号的观察表明,随着生长的继续,捕获载流子对瞬态吸收信号的贡献会下降,这支持了一种在纳米晶体生长末期表面连接增加的生长机制。这项工作为在纳米晶体合成过程中应用时间分辨光谱技术打开了大门,可以更深入地了解其生长机制以及光物理性质的演变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e89/7594514/85fa7525bb36/fchem-08-585853-g0001.jpg

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