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Functionalized graphene as a model system for the two-dimensional metal-insulator transition

机译:官能化石墨烯作为二维金属绝缘体过渡的模型系统

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Reports of metallic behavior in two-dimensional (2D) systems such as high mobility metal-oxide field effect transistors, insulating oxide interfaces, graphene, and MoS2 have challenged the well-known prediction of Abrahams, et al. that all 2D systems must be insulating. The existence of a metallic state for such a wide range of 2D systems thus reveals a wide gap in our understanding of 2D transport that has become more important as research in 2D systems expands. A key to understanding the 2D metallic state is the metal-insulator transition (MIT). In this report, we explore the nature of a disorder induced MIT in functionalized graphene, a model 2D system. Magneto-transport measurements show that weak-localization overwhelmingly drives the transition, in contradiction to theoretical assumptions that enhanced electron-electron interactions dominate. These results provide the first detailed picture of the nature of the transition from the metallic to insulating states of a 2D system.
机译:二维(2D)系统中的金属行为报告,如高迁移金属 - 氧化物场效应晶体管,绝缘氧化物界面,石墨烯和MOS2的挑战已经挑战了亚伯拉罕的众所周知的预测。所有2D系统必须是绝缘的。因此,存在用于这种广泛的2D系统的金属状态,因此在我们对2D运输的理解中揭示了广泛的差距,因为在2D系统中的研究膨胀变得更加重要。理解2D金属状态的关键是金属绝缘体过渡(MIT)。在本报告中,我们探讨了模型2D系统中功能化石墨烯中的疾病诱导的麻醉机构的性质。磁传输测量表明,弱局部化压倒性地推动过渡,以增强电子 - 电子相互作用的理论假设矛盾。这些结果提供了从金属的过渡性质的第一个详细图片到2D系统的绝缘状态。

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