Effect of tensile strain on thermal conductivity in monolayer graphene nanoribbons: A molecular dynamics study

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Abstract

The thermal conductivity of monolayer graphene nanoribbons (GNRs) with different tensile strain is investigated by using a nonequilibrium molecular dynamics method. Significant increasing amplitude of the molecular thermal vibration, molecular potential energy vibration and thermal conductivity vibration of stretching GNRs were detected. Some 20%~30% thermal conductivity decay is found in 9%~15% tensile strain of GNR cases. It is explained by the fact that GNR structural ridges scatter some low-frequency phonons which pass in the direction perpendicular to the direction of GNR stretching which was indicated by a phonon density of state investigation. © 2013 by the authors; licensee MDPI, Basel, Switzerland.

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Zhang, J., He, X., Yang, L., Wu, G., Sha, J., Hou, C., … Liu, Y. (2013). Effect of tensile strain on thermal conductivity in monolayer graphene nanoribbons: A molecular dynamics study. Sensors (Switzerland), 13(7), 9388–9395. https://doi.org/10.3390/s130709388

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