论文标题

一个维度的超导量子波动

Superconducting quantum fluctuations in one dimension

论文作者

Semenov, Andrew G., Zaikin, Andrei D.

论文摘要

我们审查了准二维超导性领域的一些最新发展。我们证明,超导纳米线的低温特性基本上取决于量子波动。超导相的平滑(高斯)波动(也与沿线传播的等离子体模式相关)可能会显着影响这种纳米线中状态的电子密度,并在超导纳米体中诱导持续的电流噪声。其他有趣的现象,例如,在当前偏置的超导纳米线中,电压的不变电阻和射击噪声是由阶参数参数的非高斯波动引起的 - 量子相滑(QPS)。这种现象可以用磁通量的隧道来解释,从而扮演有效的量子“颗粒”双重对库珀对的作用,并遵守复杂的完整计数统计数据,从而减少了低频限制的泊松人。我们还证明,QPS效应在最薄的电线和环中可能特别明显,其中量子相滑动保持不绑定并确定非扰动长度尺度$ L_C $,超过该量子会因量子波动而被抑制。因此,对于$ t \至0 $,此类纳米线应以超过$ l_c $的尺度进行绝缘,而在较短的长度尺度上,它们仍可能表现出超导性属性。我们认为,某些与顺序参数量子波动相关的非平地特征可能对特定的电路拓扑敏感,并且可以在例如电容性超导纳米线的结构中观察到。

We review some recent developments in the field of quasi-one-dimensional superconductivity. We demonstrate that low temperature properties of superconducting nanowires are essentially determined by quantum fluctuations. Smooth (Gaussian) fluctuations of the superconducting phase (also associated with plasma modes propagating along the wire) may significantly affect the electron density of states in such nanowires and induce persistent current noise in superconducting nanorings. Further interesting phenomena such as, e.g., non-vanishing resistance and shot noise of the voltage in current-biased superconducting nanowires, are caused by non-Gaussian fluctuations of the order parameter -- quantum phase slips (QPS). Such phenomena may be interpreted in terms of tunneling of fluxons playing the role of effective quantum "particles" dual to Cooper pairs and obeying complicated full counting statistics which reduces to Poissonian one in the low frequency limit. We also demonstrate that QPS effects may be particularly pronounced in thinnest wires and rings where quantum phase slips remain unbound and determine a non-perturbative length scale $L_c$ beyond which the supercurrent gets suppressed by quantum fluctuations. Accordingly, for $T \to 0$ such nanowires should become insulating at scales exceeding $L_c$, whereas at shorter length scales they may still exhibit superconducting properties. We argue that certain non-trivial features associated with quantum fluctuations of the order parameter may be sensitive to specific circuit topology and may be observed in structures like, e.g., a system of capacitively coupled superconducting nanowires.

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