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Raman enhancement on graphene: Adsorbed and intercalated molecular species

机译:石墨烯的拉曼增强:吸附和嵌入的分子种类

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Strong Raman scattering is observed from iodine anions adsorbed at ca. 3% coverage on single layer graphene. In addition, the Raman signal from just one bromine intercalation layer inside three and four layer thick graphenes is observed. We analyze and model the intramolecular electronic, charge-transfer, and multiple reflection electromagnetic mechanisms responsible for this unusual sensitivity. Graphene is an excellent Raman substrate for adsorbed species showing intramolecular electronic resonance, because graphene efficiently quenches interfering excited-state luminescence. The Raman sensitivity for adsorbed and intercalated molecular species is highest for single layer graphene and decreases with increasing thickness. These phenomena are compared with surface enhanced Raman spectroscopy field enhancement and "chemical" Raman processes in aggregated Ag particles and on flat, highly reflective metal surfaces. The Raman spectra of adsorbed bromine layers are not observed, despite significant charge transfer to graphene. Charge transfer from adsorbed bromine is about one-half of charge transfer from intercalated bromine. We attribute the large Raman signal for both adsorbed iodine and intercalated bromine species to intramolecular electronic resonance enhancement. The signal evolution with varying graphene thickness is explained by multiple reflection electromagnetic calculations.
机译:从吸附在约2的碘阴离子中观察到强烈的拉曼散射。单层石墨烯覆盖率为3%。另外,观察到仅来自三层和四层厚石墨烯内部的一层溴插层的拉曼信号。我们分析和建模负责这种不同寻常的敏感性的分子内电子,电荷转移和多次反射电磁机制。石墨烯是一种出色的拉曼底物,可用于显示分子内电子共振的被吸附物质,因为石墨烯可以有效地淬灭干扰激发态的发光。对于单层石墨烯,对吸附和嵌入的分子种类的拉曼灵敏度最高,并且随着厚度的增加而降低。将这些现象与聚集的Ag颗粒和平坦的高反射金属表面上的表面增强拉曼光谱场增强和“化学”拉曼过程进行了比较。尽管有大量电荷转移至石墨烯,但未观察到吸附的溴层的拉曼光谱。来自吸附的溴的电荷转移大约是来自嵌入溴的电荷转移的一半。我们将吸附的碘和嵌入的溴物种的大拉曼信号归因于分子内电子共振增强。通过多次反射电磁计算可以解释石墨烯厚度变化时的信号演化。

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