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Raman Enhancement via Polariton States Produced by Strong Coupling Between Localised Surface Plasmons and Dye Excitons in Metal Nanodimers

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Studies on the Plasmon-Induced Photoexcitation Processes of Molecules on Metal Surfaces

Part of the book series: Springer Theses ((Springer Theses))

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Abstract

The character of the plasmon-induced photoexcitation process is modulated by the interaction between metal and molecules. Moreover, the energy of photoexcitation process is limited by the intrinsic energy of the materials. The search for active interactions between metals and molecules is necessary to determine the general versatility and wide-range use of photoexcitation. In this chapter, the author reported on the effects of Raman scattering on the formation of nanodimer–organic dye molecule complexes that achieve strong coupling between the plasmons of the nanodimer structure and the excitons of the adsorbed dye molecules.

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Correspondence to Fumika Nagasawa .

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Nagasawa, F. (2017). Raman Enhancement via Polariton States Produced by Strong Coupling Between Localised Surface Plasmons and Dye Excitons in Metal Nanodimers. In: Studies on the Plasmon-Induced Photoexcitation Processes of Molecules on Metal Surfaces. Springer Theses. Springer, Tokyo. https://doi.org/10.1007/978-4-431-56579-6_5

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