| Literature DB >> 26729220 |
Yurii Stubrov1, Andrii Nikolenko2, Viktor Gubanov3, Viktor Strelchuk2.
Abstract
Micro-Raman spectra of single-walled carbon nanotubes in the range of two-phonon 2D bands are investigated in detail. The fine structure of two-phonon 2D bands in the low-temperature Raman spectra of the mixture and individual single-walled carbon nanotubes is considered as the reflection of structure of their π-electron zones. The dispersion behavior of 2D band fine structure components in the resonant Raman spectra of single-walled carbon nanotube mixture is studied depending on the energy of excitating photons. The role of incoming and outgoing electron-phonon resonances in the formation of 2D band fine structure in Raman spectra of single-walled carbon nanotubes is analyzed. The similarity of dispersion behavior of 2D phonon bands in single-walled carbon nanotubes, one-layer graphene, and bulk graphite is discussed.Entities:
Keywords: Arc-discharge method; Double electron-phonon resonance mechanism (DR); Graphene; Resonance Raman spectroscopy; Single-walled carbon nanotube (SWCNT); Trigonal warping; Van Hove singularities
Year: 2016 PMID: 26729220 PMCID: PMC4700034 DOI: 10.1186/s11671-015-1213-8
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Raman spectra. Raman spectra of single-layer graphene, two-layer graphene, bulk graphite, mixture of SWCNTs, and single SWCNT measured at room temperature; excitation wavelength λexc = 514.5 nm
Fig. 22D Raman band of SWCNT mixture at different excitation energies. Resonant Raman spectra in the range of 2D band for SWCNT mixture (a). Dispersion of 2D band components for SWCNTs (b). Dispersion of graphene 2D band is also shown for reference. T = 77 K
Fig. 3Examples of possible energy schemes illustrating different types of resonances with van Hove singularities (vHSs) giving rise to 2D Raman band of SWCNTs. a Incoming and outgoing resonances with vHSs for armchair (11,11) nanotube at E exc = 1.91 eV. b Incoming resonance with vHSs for zigzag (20,0) nanotube at Eexc = 2.18 eV. c Both incoming and outgoing resonances corresponding with vHSs and vHSs for chiral (15,7) nanotube at Eexc = 2.41 eV. Horizontal lines with arrows show the width of the resonant window [5, 10]