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Heat propagation models for superconducting nanobridges at millikelvin temperatures

机译:Millikelvin温度下超导纳米纤维的热传播模型

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摘要

Nanoscale superconducting quantum interference devices (nanoSQUIDs) most commonly use Dayem bridges as Josephson elements to reduce the loop size and achieve high spin sensitivity. Except at temperatures close to the critical temperature T-c, the electrical characteristics of these bridges exhibit undesirable thermal hysteresis which complicates device operation. This makes proper thermal analysis an essential design consideration for optimising nanoSQUID performance at ultralow temperatures. However the existing theoretical models for this hysteresis were developed for micron-scale devices operating close to liquid helium temperatures, and are not fully applicable to a new generation of much smaller devices operating at significantly lower temperatures. We have therefore developed a new analytic heat model which enables a more accurate prediction of the thermal behaviour in such circumstances. We demonstrate that this model is in good agreement with experimental results measured down to 100 mK and discuss its validity for different nanoSQUID geometries.
机译:纳米级超导量子干涉装置(纳米管)最常用的日期桥作为Josephson元素,以降低环尺寸并实现高旋转灵敏度。除了靠近临界温度T-C的温度外,这些桥的电特性表现出不希望的热滞后,其使装置操作复杂化。这使得适当的热分析了优化超级温度的纳米模性能的必要设计考虑。然而,对于靠近液氦温度的微米级装置,开发了这种滞后的现有理论模型,并且不完全适用于在显着较低温度下运行的更小的器件。因此,我们开发了一种新的分析热模型,可以在这种情况下更准确地预测热行为。我们证明,该模型与测量到100 mk测量的实验结果良好,并讨论了对不同纳米态几何形状的有效性。

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