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Fermi energy dependence of first- and second-order Raman spectra in graphene: Kohn anomaly and quantum interference effect

机译:石墨烯中一级和二级拉曼光谱的费米能量依赖性:Kohn异常和量子干涉效应

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摘要

Intensities of the first- and the second-order Raman spectra are calculated as a function of the Fermi energy. We show that the Kohn anomaly effect, i.e., phonon frequency renormalization, in the first-order Raman spectra originates from the phonon renormalization by the interband electron-hole excitation, whereas in the second-order Raman spectra, a competition between the interband and intraband electron-hole excitations takes place. By this calculation, we confirm the presence of different dispersive behaviors of the Raman peak frequency as a function of the Fermi energy for the first- and the second-order Raman spectra, as observed in some previous experiments. Moreover, the calculated results of the Raman intensity sensitively depend on the Fermi energy for both the first- and the second-order Raman spectra, indicating the presence of the quantum interference effect. The electron-phonon matrix element plays an important role in the intensity increase (decrease) of the combination (overtone) phonon modes as a function of the Fermi energy.
机译:根据费米能量计算一阶和二阶拉曼光谱的强度。我们表明,在一阶拉曼光谱中的Kohn异常效应,即声子频率重新归一化,源于带间电子-空穴激发的声子重归一化,而在二阶拉曼光谱中,带间和带内竞争发生电子空穴激发。通过该计算,我们证实了拉曼峰频率的不同色散行为的存在,该色散是一阶和二阶拉曼光谱的费米能量的函数,如先前实验中所观察到的。此外,对于一阶和二阶拉曼光谱,拉曼强度的计算结果敏感地取决于费米能量,这表明存在量子干涉效应。电子-声子矩阵元素在组合(泛音)声子模的强度增加(减小)中作为费米能量的函数起着重要作用。

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