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Boundary criticality at the Anderson transition between a metal and a quantum spin Hall insulator in two dimensions

机译:金属和量子自旋霍尔绝缘体在二维上的安德森跃迁处的边界临界

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摘要

Static disorder in a noninteracting gas of electrons confined to two dimensions can drive a continuous quantum (Anderson) transition between a metallic and an insulating state when time-reversal symmetry is preserved but spin-rotation symmetry is broken. The critical exponent v that characterizes the diverging localization length and the bulk multifractal scaling exponents that characterize the amplitudes of the critical wave functions at the metal-insulator transition do not depend on the topological nature of the insulating state, i.e., whether it is topologically trivial (ordinary insulator) or nontrivial (a Z_2 insulator supporting a quantum spin Hall effect). This is not true of the boundary multifractal scaling exponents, which we show (numerically) to depend on whether the insulating state is topologically trivial or not.
机译:当保留时间反向对称但自旋旋转对称性破裂时,限于二维的非相互作用电子气体中的静态无序可以驱动金属态与绝缘态之间的连续量子(Anderson)跃迁。表征发散的局域长度的临界指数v和表征金属-绝缘体转变的临界波函数振幅的本体多重分形标度指数不取决于绝缘态的拓扑性质,即,它在拓扑上是微不足道的(普通绝缘体)或非平凡(支持量子自旋霍尔效应的Z_2绝缘体)。边界多重分形标度指数并非如此,我们(用数字显示)取决于绝缘状态在拓扑上是微不足道的。

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