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利用中红外脉冲整形的时域 SFG 光谱学:实用和内在优势。

Time-domain SFG spectroscopy using mid-IR pulse shaping: practical and intrinsic advantages.

机构信息

Department of Chemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706, USA.

出版信息

J Phys Chem B. 2011 Mar 24;115(11):2536-46. doi: 10.1021/jp200757x. Epub 2011 Mar 2.

Abstract

Sum-frequency generation (SFG) spectroscopy is a ubiquitous tool in the surface sciences. It provides infrared transition frequencies and line shapes that probe the structure and environment of molecules at interfaces. In this article, we apply techniques learned from the multidimensional spectroscopy community to SFG spectroscopy. We implement balanced heterodyne detection to remove scatter and the local oscillator background. Heterodyning also separates the resonant and nonresonant signals by acquiring both the real and imaginary parts of the spectrum. We utilize mid-IR pulse shaping to control the phase and delay of the mid-IR pump pulse. Pulse shaping allows phase cycling for data collection in the rotating frame and additional background subtraction. We also demonstrate time-domain data collection, which is a Fourier transform technique, and has many advantages in signal throughput, frequency resolution, and line shape accuracy over existing frequency domain methods. To demonstrate time-domain SFG spectroscopy, we study an aryl isocyanide on gold, and find that the system has an inhomogeneous structural distribution, in agreement with computational results, but which was not resolved by previous frequency-domain SFG studies. The ability to rapidly and actively manipulate the mid-IR pulse in an SFG pules sequence makes possible new experiments and more accurate spectra.

摘要

和频产生(SFG)光谱学是表面科学中常用的工具。它提供了探测分子在界面处的结构和环境的红外跃迁频率和线型。在本文中,我们将多维光谱学领域的技术应用于 SFG 光谱学。我们采用平衡外差探测来消除散射和本振背景。外差探测还通过获取光谱的实部和虚部来分离共振和非共振信号。我们利用中红外脉冲整形来控制中红外泵浦脉冲的相位和延迟。脉冲整形允许在旋转框架中进行相位循环以用于数据采集,并进行额外的背景扣除。我们还展示了时域数据采集,这是一种傅里叶变换技术,与现有的频域方法相比,它在信号吞吐量、频率分辨率和线型精度方面具有许多优势。为了演示时域 SFG 光谱学,我们研究了金上的芳基异氰酸酯,发现该系统具有不均匀的结构分布,与计算结果一致,但这一点在前瞻性频域 SFG 研究中没有得到解决。在 SFG 脉冲序列中快速且主动地控制中红外脉冲的能力使新的实验和更精确的光谱成为可能。

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