| Literature DB >> 27075339 |
Leonid Dolgov1, Denys Pidhirnyi2, Galyna Dovbeshko3, Tetiana Lebedieva3, Valter Kiisk1, Siim Heinsalu1, Sven Lange1, Raivo Jaaniso1, Ilmo Sildos1.
Abstract
An enhanced Raman scattering from a thin layer of adenine molecules deposited on graphene substrate was detected. The value of enhancement depends on the photon energy of the exciting light. The benzene ring in the structure of adenine molecule suggests π-stacking of adenine molecule on top of graphene. So, it is proposed that the enhancement in the adenine Raman signal is explained by the resonance electron transfer from the Fermi level of graphene to the lowest unoccupied molecular orbital (LUMO) level of adenine.Entities:
Keywords: Adenine; Chemical enhancement; Graphene; Raman scattering
Year: 2016 PMID: 27075339 PMCID: PMC4830781 DOI: 10.1186/s11671-016-1418-5
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1The Raman spectra of silica (1), silicon (2), and graphene on silicon (3). Spectra are not normalized but only shifted along the vertical axis for clarity. Inset: microscopic image of a dried micro-droplet of adenine solution deposited on the graphene surface
Fig. 2Raman spectra of dried adenine droplets deposited on quartz (1) and graphene (2, 3). Excitation wavelengths used are 514 nm (for spectra 1 and 2) and 488 nm (for spectrum 3). Spectra are not normalized but only shifted along the vertical axis for clarity
Fig. 3The intensities of the adenine Raman bands in the range 1100–1500 cm−1 at the cases of 514-nm (1) and 488-nm (2) excitations. Intensities are background corrected and normalized to incident laser power. Inset: schematic arrangement of adenine molecule on the graphene surface. Nitrogen atoms are marked by a blue color
Fig. 4The energy level scheme of the graphene-adenine system