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Performance of Monolayer Graphene Nanomechanical Resonators with Electrical Readout

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arxiv 0907.3721 v2 pith:I45HK7NQ submitted 2009-07-21 cond-mat.mes-hall

classification cond-mat.mes-hall
keywords graphenemassdensitymonolayerresonatorsapplicationschangeselectrical
verification ladder T0 review T1 audit T2 compute T3 formal
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The enormous stiffness and low density of graphene make it an ideal material for nanoelectromechanical (NEMS) applications. We demonstrate fabrication and electrical readout of monolayer graphene resonators, and test their response to changes in mass and temperature. The devices show resonances in the MHz range. The strong dependence of the resonant frequency on applied gate voltage can be fit to a membrane model, which yields the mass density and built-in strain. Upon removal and addition of mass, we observe changes in both the density and the strain, indicating that adsorbates impart tension to the graphene. Upon cooling, the frequency increases; the shift rate can be used to measure the unusual negative thermal expansion coefficient of graphene. The quality factor increases with decreasing temperature, reaching ~10,000 at 5 K. By establishing many of the basic attributes of monolayer graphene resonators, these studies lay the groundwork for applications, including high-sensitivity mass detectors.

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