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Coherence and Disorder in Bilayer Quantum Hall Systems

机译:双层量子霍尔系统中的相干和无序

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The quantum Hall bilayer at total filling factor v = 1 displays a number of properties akin to superfluidity, most clearly apparent in its very low dissipation in tunneling and counterflow transport. Theoretical descriptions in terms of quantumHall ferromagnetism or thin-film superfluidity can be developed to explain these phenomena. In either case, merons can be identified as important low energy excitations.We demonstrate that a model in which puddles of merons induced by disorder, separated by narrow regions of interlayer coherence—a coherence network—can naturally explain many of the imperfect superfluid finite temperature properties that are observed in these systems. The periodic realization of this model shows that there can be low energy excitations beyond the superfluid mode. These are associated with transitions between states of different meron number in the puddles, where we argue that merons should be unbound at any temperature, and which can have important implications for the effect of quantum fluctuations on the system.
机译:总填充系数为v = 1的量子霍尔双层显示出许多类似于超流态的特性,最明显的是在隧道和逆流传输中其非常低的耗散。可以用量子霍尔铁磁性或薄膜超流动性的理论描述来解释这些现象。无论哪种情况,瓜子都可以被认为是重要的低能量激发。我们证明了一个模型,其中由无序诱导的瓜子水坑,由层间相干的狭窄区域(相干网络)隔开的自然可以解释许多不完美的超流体有限温度这些系统中观察到的特性。该模型的周期性实现表明,除了超流体模式之外,还可能存在低能激发。这些与水坑中不同介子数状态之间的跃迁相关,我们认为介子在任何温度下都应解键,这可能会对量子涨落对系统的影响产生重要影响。

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