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Coherent anti-Stokes Raman spectroscopy of single and multi-layer graphene

机译:单层石墨烯的相干反斯托克斯拉曼光谱

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Spontaneous Raman spectroscopy is a powerful characterization tool for graphene research. Its extension to the coherent regime, despite the large nonlinear third-order susceptibility of graphene, has so far proven challenging. Due to its gapless nature, several interfering electronic and phononic transitions concur to generate its optical response, preventing to retrieve spectral profiles analogous to those of spontaneous Raman. Here we report stimulated Raman spectroscopy of the G-phonon in single and multi-layer graphene, through coherent anti-Stokes Raman Scattering. The nonlinear signal is dominated by a vibrationally non-resonant background, obscuring the Raman lineshape. We demonstrate that the vibrationally resonant coherent anti-Stokes Raman Scattering peak can be measured by reducing the temporal overlap of the laser excitation pulses, suppressing the vibrationally non-resonant background. We model the spectra, taking into account the electronically resonant nature of both. We show how coherent anti-Stokes Raman Scattering can be used for graphene imaging with vibrational sensitivity.
机译:自发拉曼光谱是石墨烯研究的强大表征工具。尽管石墨烯的非线性三阶易感性大,但仍有巨大的石墨烯的延伸,这是迄今为止陷入挑战性的。由于其无间隙性,几个干扰电子和声子转型同样同样会产生其光学响应,防止检索类似于自发拉曼的光谱曲线。在这里,我们通过相干的防斯托克斯拉曼散射报告单层石墨烯中的G-Phonon的刺激拉曼光谱。非线性信号由振动非谐振背景主导,遮挡拉曼线厚度。我们证明,可以通过减少激光激发脉冲的时间重叠来测量振动共振相干抗箭头拉曼散射峰,抑制振动非谐振背景。我们模拟光谱,考虑到两者的电子共振性质。我们展示了连贯的反斯托克斯拉曼散射如何用于具有振动敏感性的石墨烯成像。

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