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Raman-scattering measurements and first-principles calculations of strain-induced phonon shifts in monolayer MoS 2

C. Rice, Robert J. Young, Recep Zan, U. Bangert, D. Wolverson, Thanasis Georgiou, R. Jalil, Kostya S. Novoselov

📄 Abstract

The effect of strain on the phonon modes of monolayer and few-layer MoS${}_{2}$ has been investigated by observing the strain-induced shifts of the Raman-active modes. Uniaxial strain was applied to a sample of thin-layer MoS${}_{2}$ sandwiched between two layers of optically transparent polymer. The resulting band shifts of the ${E}_{2g}^{1}$ ($ensuremath{sim}$$385.3phantom{rule{0.28em}{0ex}}{mathrm{cm}}^{ensuremath{-}1}$) and ${A}_{1g}$ ($ensuremath{sim}$$402.4phantom{rule{0.28em}{0ex}}{mathrm{cm}}^{ensuremath{-}1}$) Raman modes were found to be small but observable. First-principles plane-wave calculations based on density functional perturbation theory were used to determine the Gr”uneisen parameters for the ${E}_{1g}$, ${E}_{2g}^{1}$, ${A}_{1g}$, and ${A}_{2u}$ modes and predict the experimentally observed band shifts for the monolayer material. The polymer–MoS${}_{2}$ interface is found to remain intact through several strain cycles. As an emerging 2D material with potential in future nanoelectronics, these results have important consequences for the incorporation of thin-layer MoS${}_{2}$ into devices.

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