Scinovex
article Open AccessTop 1% cited

Identification of individual and few layers of WS2 using Raman Spectroscopy

Scientific Reports · 2013 · Vol. 3(1)
Ayşe BerkdemirHumberto R. GutiérrezAndrés R. Botello‐MéndezNéstor Perea‐LópezAna Laura ElíasChen-Ing ChiaBei WangVincent H. CrespiFlorentino Lopéz‐UríasJean‐Christophe CharlierHumberto TerronesMauricio Terrones

Abstract

The Raman scattering of single- and few-layered WS2 is studied as a function of the number of S-W-S layers and the excitation wavelength in the visible range (488, 514 and 647 nm). For the three excitation wavelengths used in this study, the frequency of the A1g(Γ) phonon mode monotonically decreases with the number of layers. For single-layer WS2, the 514.5 nm laser excitation generates a second-order Raman resonance involving the longitudinal acoustic mode (LA(M)). This resonance results from a coupling between the electronic band structure and lattice vibrations. First-principles calculations were used to determine the electronic and phonon band structures of single-layer and bulk WS2. The reduced intensity of the 2LA mode was then computed, as a function of the laser wavelength, from the fourth-order Fermi golden rule. Our observations establish an unambiguous and nondestructive Raman fingerprint for identifying single- and few-layered WS2 films.

2D Materials and ApplicationsMXene and MAX Phase MaterialsGas Sensing Nanomaterials and SensorsRaman spectroscopyExcitationRaman scatteringLaserPhononResonance (particle physics)WavelengthMaterials scienceFermi's golden ruleExcitation wavelength

Funding

  • Multidisciplinary University Research Initiative
  • Division of Materials Research
  • Army Research Office
Citations
1,538
FWCI
42.75
field-weighted impact
References
44
Percentile
100%
vs. same field & year
Citations per year
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.