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Theory of Spatial Coherence in Near-Field Raman Scattering

机译:近场拉曼散射的空间相干理论

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A theoretical study describing the coherence properties of near-field Raman scattering in two- and one-dimensional systems is presented. The model is applied to the Raman modes of pristine graphene and graphene edges. Our analysis is based on the tip-enhanced Raman scheme, in which a sharp metal tip located near the sample surface acts as a broadband optical antenna that transfers the information contained in the spatially correlated (but nonpropagating) near field to the far field. The dependence of the scattered signal on the tip-sample separation is explored, and the theory predicts that the signal enhancement depends on the particular symmetry of a vibrational mode. The model can be applied to extract the correlation length L c of optical phonons from experimentally recorded near-field Raman measurements. The coherence properties of optical phonons have been broadly explored in the time and frequency domains, and the spatially resolved approach presented here provides a complementary methodology for the study of local material properties at the nanoscale.
机译:提出了描述二维和一维系统中近场拉曼散射相干特性的理论研究。该模型适用于原始石墨烯和石墨烯边缘的拉曼模式。我们的分析基于尖端增强的拉曼方案,其中位于样品表面附近的尖锐金属尖端充当宽带光学天线,将空间相关(但不传播)的近场中包含的信息传输到远场。探索了散射信号与尖端样本分离的相关性,该理论预测信号增强取决于振动模式的特定对称性。该模型可用于从实验记录的近场拉曼测量中提取光学声子的相关长度L c。光学声子的相干特性已在时域和频域中得到了广泛的探索,此处提出的空间分辨方法为研究纳米尺度的局部材料特性提供了一种补充方法。

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