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      Nanoscale thermal transport. II. 2003–2012

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          Is Open Access

          The electronic properties of graphene

          This article reviews the basic theoretical aspects of graphene, a one atom thick allotrope of carbon, with unusual two-dimensional Dirac-like electronic excitations. The Dirac electrons can be controlled by application of external electric and magnetic fields, or by altering sample geometry and/or topology. We show that the Dirac electrons behave in unusual ways in tunneling, confinement, and integer quantum Hall effect. We discuss the electronic properties of graphene stacks and show that they vary with stacking order and number of layers. Edge (surface) states in graphene are strongly dependent on the edge termination (zigzag or armchair) and affect the physical properties of nanoribbons. We also discuss how different types of disorder modify the Dirac equation leading to unusual spectroscopic and transport properties. The effects of electron-electron and electron-phonon interactions in single layer and multilayer graphene are also presented.
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            Thermal boundary resistance

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              Model for Lattice Thermal Conductivity at Low Temperatures

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                Author and article information

                Journal
                Applied Physics Reviews
                Applied Physics Reviews
                AIP Publishing
                1931-9401
                March 2014
                March 2014
                : 1
                : 1
                : 011305
                Article
                10.1063/1.4832615
                f351b34e-6180-4a5d-8dfd-4a446eb5171a
                © 2014
                History

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