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Noise theory of dc nano-SQUIDs based on Dayem nanobridges

机译:基于Dayem纳米桥的DC nano-SQUID的噪声理论

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In the recent years, nanoscale superconducting quantum interference devices (nano-SQUIDs) played a fundamental role in the study of small spin systems. Nano-SQUIDs typically employ nano-Dayem bridges having dimensions (length L and/or width W) greater than coherence length ξ of the superconducting film. They exhibit characteristics different from those of standard SQUIDs because the current-phase relationship (CPR) is nonsinusoidal, rendering most of the theoretical predictions based on the standard SQUID theory usually unreliable. Here, we present a noise theory of dc nano-SQUIDs based on Dayem nanobridges. We have computed the main characteristics of this quantum device including current-voltage and voltage-magnetic flux characteristics, magnetic flux-to-voltage transfer factor, and spectral densities of voltage and magnetic flux noise for L/ξ ratios ranging from 1 (sinusoidal limit) to 3.5 (hysteretic limit). The CPRs have been computed by using the theory of Josephson weak links based on the Ginzburg-Landau equation. The results show a dependence of the magnetic flux noise spectral density on (L/ξ)~(4/3) involving a degradation of about a factor of five between the two extreme cases and are consistent with experimentally measured magnetic flux noises reported in the literature. These results provide useful information for both device physics and their applications.
机译:近年来,纳米级超导量子干涉装置(nano-SQUID)在小型自旋系统的研究中发挥了重要作用。纳米SQUID通常采用纳米Dayem桥,其尺寸(长度L和/或宽度W)大于超导膜的相干长度ξ。它们表现出与标准SQUID不同的特性,因为电流-相位关系(CPR)是非正弦的,这使得基于标准SQUID理论的大多数理论预测通常都不可靠。在这里,我们介绍基于Dayem纳米桥的dc纳米SQUID的噪声理论。我们已经计算出该量子器件的主要特征,包括电流-电压和电压-磁通量特性,磁通-电压传递因子,以及L /ξ比范围为1(正弦极限)的电压和磁通噪声的频谱密度)至3.5(磁滞极限)。通过使用基于Ginzburg-Landau方程的约瑟夫森弱连接理论来计算CPR。结果表明,磁通量噪声频谱密度对(L /ξ)〜(4/3)的依赖性,在两种极端情况之间大约降低了五倍,并且与实验中测得的磁通量噪声一致。文献。这些结果为设备物理及其应用提供了有用的信息。

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