State Key Laboratory of Surface Physics and Key Laboratory of Micro- and Nano-Photonic Structures (MOE), Department of Physics, Fudan University, Shanghai 200438, China.
Collaborative Innovation Center of Advanced Microstructures, Nanjing 210093, China.
J Phys Chem Lett. 2022 Feb 17;13(6):1465-1472. doi: 10.1021/acs.jpclett.2c00055. Epub 2022 Feb 7.
Despite its success in many fields, the implementation of coherent anti-Stokes Raman spectroscopy (CARS) in tackling the problems at interfaces was hindered by the enormous resonant and nonresonant background from the bulk. In this work, we have developed a novel CARS scheme that can probe a buried interface via ≥10-fold suppression of the nonresonant and resonant bulk contribution. The method utilizes self-destructive interference between the forward and backward CARS generated in the bulk near the Brewster angle. As a result, we can resolve the vibrational spectrum of submonolayer interfacial polar/apolar species immersed in the surrounding medium with huge CARS responses. We expect that our approach opens up the opportunity to interrogate the interfaces involving apolar molecules and benefits other nonlinear optical spectroscopic techniques, e.g., sum-frequency spectroscopy and four-wave mixing spectroscopy in general, to promote the signal-to-background noise ratio.
尽管相干反斯托克斯拉曼光谱(CARS)在许多领域取得了成功,但在解决界面问题时,其在处理界面问题时受到来自体相的巨大共振和非共振背景的阻碍。在这项工作中,我们开发了一种新的 CARS 方案,可以通过≥ 10 倍抑制非共振和共振体相贡献来探测埋入的界面。该方法利用在布鲁斯特角附近的体相中的正向和反向 CARS 之间的自毁干涉。结果,我们可以解析浸入周围介质中的亚单层界面极性/非极性物质的振动光谱,具有巨大的 CARS 响应。我们期望我们的方法为涉及非极性分子的界面提供了研究机会,并使其他非线性光学光谱技术(例如,和频光谱和四波混频光谱)受益,以提高信号与背景噪声比。