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Quantum complexity in graphene

机译:石墨烯的量子复杂性

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Carbon has a unique position among elements in the periodic table. It produces an allotrope, graphene, a mechanically robust two dimensional semimetal. The multifarious properties that graphene exhibits has few parallels among elemental metals. From simplicity, namely carbon atoms connected by pure sp2 bonds, a wealth of novel quantum properties emerge. In classical complex systems such as a spin glass or a finance market, several competing agents or elements are responsible for unanticipated and difficult to predict emergent properties. The complex (sic) structure of quantum mechanics is responsbile for an unanticipated set of emergent properties in graphene. We call this quantum complexity. In fact, most quantum systems, phenomena and modern quantum field theory could be viewed as examples of quantum complexity. After giving a brief introduction to the quantum complexity we focus on our own work, which indicates the breadth in the type of quantum phenomena that graphene could support. We review our theoretical suggestions of, (i) spin-1 collective mode in netural graphene, (ii) relativistic type of phenomena in crossed electric and magnetic fields, (iii) room temperature superconductivity in doped graphene and (iv) composite Fermi sea in neutral graphene in uniform magnetic field and (v) two-channel Kondo effect. Except for the relativistic type of phenomena, the rest depend in a fundamental way on a weak electron correlation that exists in the broad two-dimensional band of graphene.
机译:碳在元素周期表中的元素之间具有独特的位置。它产生同素异形体,石墨烯,一种机械坚固的二维半金属。石墨烯表现出的多种特性在元素金属之间几乎没有相似之处。从简单性(即通过纯sp2键连接的碳原子)开始,出现了许多新颖的量子性质。在诸如旋转玻璃或金融市场之类的经典复杂系统中,一些竞争性代理或要素负责未预料到且难以预测的涌现特性。量子力学的复杂(原文如此)结构对石墨烯中意外出现的一组新兴特性负责。我们称这种量子复杂性。实际上,大多数量子系统,现象和现代量子场论都可以看作是量子复杂性的例子。在简要介绍了量子复杂性之后,我们将重点介绍我们自己的工作,这表明了石墨烯可以支持的量子现象类型的广度。我们回顾了有关以下方面的理论建议:(i)网络石墨烯中的spin-1集体模式;(ii)交叉电场和磁场中的相对论现象;(iii)掺杂石墨烯中的室温超导性;以及(iv)墨西哥复合费米海均匀磁场中的中性石墨烯和(v)两通道近藤效应。除了相对论的现象外,其余的现象都从根本上取决于存在于石墨烯二维二维带中的弱电子相关性。

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