Development of phase-cycling interface-specific two-dimensional electronic sum frequency generation (2D-ESFG) spectroscopy

Zhi-Chao Huang-Fu, Yuqin Qian, Tong Zhang, Jesse B. Brown, Yi Rao
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Abstract

Two-dimensional electronic spectroscopy (2D-ES) has become an important technique for studying energy transfer, electronic coupling, and electronic–vibrational coherence in the past ten years. However, since 2D-ES is not interface specific, the electronic information at surfaces and interfaces could not be demonstrated clearly. Two-dimensional electronic sum-frequency generation (2D-ESFG) is an emerging spectroscopic technique that explores the correlations between different interfacial electronic transitions and is the extension of 2D-ES to surface and interfacial specificity. In this work, we present the detailed development and implementation of phase-cycling 2D-ESFG spectroscopy using an acousto-optic pulse shaper in a pump–probe geometry. With the pulse pair generated by a pulse shaper rather than optical devices based on birefringence or interference, this 2D-ESFG setup enables rapid scanning, phase cycling, and the separation of rephasing and nonrephasing signals. In addition, by collecting data in a rotating frame, we greatly improve experimental efficiency. We demonstrate the method for azo-derivative molecules at the air/water interface. This method could be readily extended to different interfaces and surfaces. The unique phase-cycling 2D-ESFG technique enables one to quantify the energy transfer, charge transfer, electronic coupling, and many other electronic properties and dynamics at surfaces and interfaces with precision and relative ease of use. Our goal in this article is to present the fine details of the fourth-order nonlinear optical technique in a manner that is comprehensive, succinct, and approachable such that other researchers can implement, improve, and adapt it to probe unique and innovative problems to advance the field.
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开发特定于相位循环界面的二维电子总和频率发生(2D-ESFG)光谱学
近十年来,二维电子能谱(2D-ES)已成为研究能量传递、电子耦合和电子振动相干性的重要技术。然而,由于二维电子能谱不具有界面特异性,因此无法清楚地展示表面和界面的电子信息。二维电子总频发生(2D-ESFG)是一种新兴的光谱技术,可探索不同界面电子跃迁之间的相关性,是 2D-ES 向表面和界面特异性的扩展。在这项工作中,我们详细介绍了利用泵探几何中的声光脉冲整形器开发和实施相位循环 2D-ESFG 光谱的情况。由于脉冲整形器产生的脉冲对而不是基于双折射或干涉的光学设备,这种 2D-ESFG 设置可实现快速扫描、相位循环以及重相和非重相信号的分离。此外,通过在旋转框架中收集数据,我们大大提高了实验效率。我们对空气/水界面上的偶氮衍生物分子进行了演示。这种方法可以很容易地扩展到不同的界面和表面。独特的相循环二维-ESFG 技术使我们能够对表面和界面的能量转移、电荷转移、电子耦合以及许多其他电子特性和动力学进行精确量化,而且相对容易使用。我们在这篇文章中的目标是以全面、简洁、易懂的方式介绍四阶非线性光学技术的细节,使其他研究人员能够实施、改进和调整该技术,以探究独特和创新的问题,推动该领域的发展。
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