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Bandgap Engineering of Strained Monolayer and Bilayer MoS<sub>2</sub>

Nano Letters · 2013 · Vol. 13(8) · pp. 3626–3630
Hiram J. ConleyBin WangJed I. ZieglerRichard F. HaglundSokrates T. PantelidesKirill I. Bolotin

Abstract

We report the influence of uniaxial tensile mechanical strain in the range 0-2.2% on the phonon spectra and bandstructures of monolayer and bilayer molybdenum disulfide (MoS2) two-dimensional crystals. First, we employ Raman spectroscopy to observe phonon softening with increased strain, breaking the degeneracy in the E' Raman mode of MoS2, and extract a Grüneisen parameter of ~1.06. Second, using photoluminescence spectroscopy we measure a decrease in the optical band gap of MoS2 that is approximately linear with strain, ~45 meV/% strain for monolayer MoS2 and ~120 meV/% strain for bilayer MoS2. Third, we observe a pronounced strain-induced decrease in the photoluminescence intensity of monolayer MoS2 that is indicative of the direct-to-indirect transition of the character of the optical band gap of this material at applied strain of ~1%. These observations constitute a demonstration of strain engineering the band structure in the emergent class of two-dimensional crystals, transition-metal dichalcogenides.

2D Materials and ApplicationsGraphene research and applicationsThermal properties of materialsMonolayerMolybdenum disulfidePhotoluminescenceRaman spectroscopyBilayerPhononBand gap
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References
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Nature Nanotechnology · 2011 · 14,596 citations
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From Bulk to Monolayer MoS<sub>2</sub>: Evolution of Raman Scattering
Advanced Functional Materials · 2012 · 4,113 citations
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Nano Letters · 2010 · 9,198 citations
Valley polarization in MoS2 monolayers by optical pumping
Nature Nanotechnology · 2012 · 3,618 citations
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ACS Nano · 2011 · 2,590 citations
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