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Tomonaga–Luttinger physics in electronic quantum circuits

机译:电子量子电路中的Tomonaga–Luttinger物理学

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摘要

In one-dimensional conductors, interactions result in correlated electronic systems. At low energy, a hallmark signature of the so-called Tomonaga–Luttinger liquids is the universal conductance curve predicted in presence of an impurity. A seemingly different topic is the quantum laws of electricity, when distinct quantum conductors are assembled in a circuit. In particular, the conductances are suppressed at low energy, a phenomenon called dynamical Coulomb blockade. Here we investigate the conductance of mesoscopic circuits constituted by a short single-channel quantum conductor in series with a resistance, and demonstrate a proposed link to Tomonaga–Luttinger physics. We reformulate and establish experimentally a recently derived phenomenological expression for the conductance using a wide range of circuits, including carbon nanotube data obtained elsewhere. By confronting both conductance data and phenomenological expression with the universal Tomonaga–Luttinger conductance curve, we demonstrate experimentally the predicted mapping between dynamical Coulomb blockade and the transport across a Tomonaga–Luttinger liquid with an impurity.
机译:在一维导体中,相互作用会导致相关的电子系统。在低能量下,所谓的Tomonaga–Luttinger液体的标志性特征是在存在杂质的情况下预测的通用电导曲线。当不同的量子导体组装在电路中时,看似不同的主题是电的量子定律。特别是,在低能量时电导受到抑制,这种现象称为动态库仑阻塞。在这里,我们研究由短单通道量子导体与电阻串联构成的介观电路的电导,并证明了与Tomonaga-Luttinger物理学的拟议联系。我们使用广泛的电路,包括从其他地方获得的碳纳米管数据,重新制定并实验建立了电导的最新现象学表达。通过用通用的Tomonaga-Luttinger电导曲线来面对电导数据和现象学表达,我们通过实验证明了动态库仑阻塞与通过Tomonaga-Luttinger液体与杂质的迁移之间的预测映射。

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