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Current-induced SQUID behavior of superconducting Nb nano-rings

机译:电流诱导的超导Nb纳米环的SQUID行为

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摘要

The critical temperature in a superconducting ring changes periodically with the magnetic flux threading it, giving rise to the well-known Little-Parks magnetoresistance oscillations. Periodic changes of the critical current in a superconducting quantum interference device (SQUID), consisting of two Josephson junctions in a ring, lead to a different type of magnetoresistance oscillations utilized in detecting extremely small changes in magnetic fields. Here we demonstrate current-induced switching between Little-Parks and SQUID magnetoresistance oscillations in a superconducting nano-ring without Josephson junctions. Our measurements in Nb nano-rings show that as the bias current increases, the parabolic Little-Parks magnetoresistance oscillations become sinusoidal and eventually transform into oscillations typical of a SQUID. We associate this phenomenon with the flux-induced non-uniformity of the order parameter along a superconducting nano-ring, arising from the superconducting leads (‘arms’) attached to it. Current enhanced phase slip rates at the points with minimal order parameter create effective Josephson junctions in the ring, switching it into a SQUID.
机译:超导环中的临界温度随磁通量的变化而周期性地变化,从而引起众所周知的Little-Parks磁阻振荡。由一个环中的两个约瑟夫森结组成的超导量子干涉装置(SQUID)中的临界电流的周期性变化会导致用于检测磁场中极小的变化的磁阻振荡的类型有所不同。在这里,我们演示了在没有约瑟夫森结的超导纳米环中,电流在Little-Parks和SQUID磁阻振荡之间的切换。我们在Nb纳米环中的测量结果表明,随着偏置电流的增加,抛物线形Little-Parks磁阻振荡变成正弦曲线,并最终转变为SQUID的典型振荡。我们将这种现象与超导纳米环上因其所附着的超导引线(“臂”)引起的磁通量引起的阶跃参数不均匀性相关联。当前具有最小阶数参数的点处提高的相位滑移率会在环中创建有效的约瑟夫逊结,并将其切换为SQUID。

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