DFT Vibrational Calculations of Rhodamine 6G Adsorbed on Silver: Analysis of Tip-Enhanced Raman Spectroscopy
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- 26 February 2005
- journal article
- research article
- Published by American Chemical Society (ACS) in The Journal of Physical Chemistry B
- Vol. 109 (11), 5012-5020
- https://doi.org/10.1021/jp045771u
Abstract
The tip-enhanced near-field Raman (TERS) bands of Rhodamine 6G (R6G), that we reported earlier [Chem. Phys. Lett.2001, 335, 369.], are assigned on the basis of density-functional theory (DFT) calculations at the 6-311++G(d,p) level. The Raman and infrared intensities as well as frequencies of the vibrational modes are used for band assignments. These vibrational modes, in combination with characterization of resonant electronic transitions using time-dependent DFT calculations, predict spectral changes in resonant Raman and surface-enhanced resonant Raman scatterings of R6G. Moreover, the TERS spectra of R6G are analyzed in detail, where interactions between the tip and R6G molecules and their enhancement mechanisms are discussed. Finally, we propose a novel Raman spectroscopy technique capable of detecting molecular vibrations at sub-nanometer scale.This publication has 58 references indexed in Scilit:
- Metallized tip amplification of near-field Raman scatteringOptics Communications, 2000
- Locally enhanced Raman spectroscopy with an atomic force microscopeApplied Physics Letters, 2000
- Nanoscale chemical analysis by tip-enhanced Raman spectroscopyChemical Physics Letters, 2000
- Development of a scanning near-field optical probe for localised Raman spectroscopyUltramicroscopy, 1995
- Raman imaging with near-field scanning optical microscopyApplied Physics Letters, 1995
- Probing Single Molecule DynamicsScience, 1994
- Alterations of Single Molecule Fluorescence Lifetimes in Near-Field Optical MicroscopyScience, 1994
- Raman spectroscopy using a fiber optic probe with subwavelength apertureApplied Physics Letters, 1994
- Super-resolution fluorescence near-field scanning optical microscopyApplied Physics Letters, 1986
- Optical stethoscopy: Image recording with resolution λ/20Applied Physics Letters, 1984