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arXiv · 1511.02049

The Effect of Intrinsic Crumpling on the Mechanics of Free-Standing Graphene

Abstract

Free-standing graphene is inherently crumpled in the out-of-plane direction due to dynamic flexural phonons and static wrinkling. We explore the consequences of this crumpling on the effective mechanical constants of graphene. We develop a sensitive experimental approach to probe stretching of graphene membranes under low applied stress at cryogenic to room temperatures. We find that the in-plane stiffness of graphene is between 20 and 100 N/m at room temperature, much smaller than 340 N/m (the value expected for flat graphene). Moreover, while the in-plane stiffness only increases moderately when the devices are cooled down to 10 K, it approaches 300 N/m when the aspect ratio of graphene membranes is increased. These results indicate that softening of graphene at temperatures less than 400 K is caused by static wrinkling, with only a small contribution due to flexural phonons. Together, these results explain the large variation in reported mechanical constants of graphene devices and paves the way towards controlling their mechanical properties.

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Ryan J. T. Nicholl, Hiram J. Conley, Nickolay V. Lavrik, Ivan Vlassiouk, Yevgeniy S. Puzyrev, Vijayashree Parsi Sreenivas, Sokrates T. Pantelides, Kirill I. Bolotin. 2015-11-06. The Effect of Intrinsic Crumpling on the Mechanics of Free-Standing Graphene. https://doi.org/10.1038/ncomms9789

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