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利用傅里叶变换非线性光学提高光谱、空间和机理分辨率:教程综述

Improving Spectral, Spatial, and Mechanistic Resolution Using Fourier Transform Nonlinear Optics: A Tutorial Review.

作者信息

Steves Megan A, Knappenberger Kenneth L

机构信息

Department of Chemistry, Pennsylvania State University, University Park, Pennsylvania 16802, United States.

出版信息

ACS Phys Chem Au. 2022 Dec 7;3(2):130-142. doi: 10.1021/acsphyschemau.2c00051. eCollection 2023 Mar 22.

Abstract

Fourier transform nonlinear optics (FT-NLO) is a powerful experimental physical chemistry tool that provides insightful spectroscopic and imaging data. FT-NLO has revealed key steps in both intramolecular and intermolecular energy flow. Using phase-stabilized pulse sequences, FT-NLO is employed to resolve coherence dynamics in molecules and nanoparticle colloids. Recent advances in time-domain NLO interferometry using collinear beam geometries makes determination of molecular and material linear and nonlinear excitation spectra, homogeneous line width, and nonlinear excitation pathways straightforward. When combined with optical microscopy, rapid acquisition of hyperspectral images with the information content of FT-NLO spectroscopy is possible. With FT-NLO microscopy, molecules and nanoparticles colocated within the optical diffraction limit can be distinguished based on their excitation spectra. The suitability of certain nonlinear signals for statistical localization present exciting prospects for using FT-NLO to visualize energy flow on chemically relevant length scales. In this tutorial review, descriptions of FT-NLO experimental implementations are provided along with theoretical formalisms for obtaining spectral information from time-domain data. Select case studies that illustrate the use of FT-NLO are presented. Finally, strategies for extending super-resolution imaging capabilities based on polarization-selective spectroscopy are offered.

摘要

傅里叶变换非线性光学(FT-NLO)是一种强大的实验物理化学工具,可提供有深刻见解的光谱和成像数据。FT-NLO揭示了分子内和分子间能量流动的关键步骤。利用相位稳定的脉冲序列,FT-NLO被用于解析分子和纳米颗粒胶体中的相干动力学。使用共线光束几何结构的时域NLO干涉测量法的最新进展,使得确定分子和材料的线性和非线性激发光谱、均匀线宽以及非线性激发途径变得直接明了。当与光学显微镜结合使用时,就能够快速获取具有FT-NLO光谱信息含量的高光谱图像。借助FT-NLO显微镜,可以根据分子和纳米颗粒的激发光谱区分位于光学衍射极限内的它们。某些非线性信号适用于统计定位,这为利用FT-NLO在化学相关长度尺度上可视化能量流动带来了令人兴奋的前景。在本教程综述中,提供了FT-NLO实验实现的描述以及从时域数据获取光谱信息的理论形式。还展示了说明FT-NLO用途的精选案例研究。最后,提供了基于偏振选择光谱扩展超分辨率成像能力的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dd0d/10037448/3b477227faf0/pg2c00051_0009.jpg

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