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Local flux-flow instability in superconducting films near T_c

机译:T_c附近的超导薄膜中的局部通量流不稳定性

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Larkin and Ovchinnikov established that the viscous flow of magnetic flux quanta in current-biased superconductor films placed in a perpendicular magnetic field can lose stability due to a decrease in the vortex viscosity coefficient eta with increasing velocity of the vortices v. The dependence of eta on nu leads to a nonlinear section in the current-voltage (I-V) curve, which ends at the flux-flow instability point with a voltage jump to a highly resistive state. At the same time, in contradistinction with the nonlinear conductivity regime, instability jumps often occur in linear I-V sections. Here, for the elucidation of such jumps we develop a theory of local instability of the magnetic flux flow occurring not in the entire film but in a narrow strip across the film width in which vortices move much faster than outside it. The predictions of the developed theory are in agreement with experiments on Nb films for which the heat removal coefficients and the inelastic scattering times of quasiparticles are deduced. The presented model of local instability is also relevant for the characterization of superconducting thin films whose performance is examined for fast single-photon detection.
机译:Larkin和Ovchinnikov认为,垂直于磁场的电流偏置超导体薄膜中的磁通量量子流会随着涡旋速度v的增加而使涡流粘度系数eta减小,从而失去稳定性。 nu导致电流-电压(IV)曲线中出现一个非线性部分,该部分在磁通量不稳定点处终止,电压跃升至高电阻状态。同时,与非线性电导率方法不同,线性IV截面中经常发生不稳定性跳跃。在这里,为了阐明这种跳跃,我们发展了一种磁通量局部不稳定性的理论,该理论不发生在整个膜中,而是在整个膜宽的窄条中发生,在该条中,涡旋的移动速度快于其外部。发达理论的预测与在Nb薄膜上的实验相吻合,据此推导了准粒子的散热系数和非弹性散射时间。所提出的局部不稳定性模型也与超导薄膜的表征有关,超导薄膜的性能可用于快速单光子检测。

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  • 来源
    《Physical review 》 |2019年第17期| 174518.1-174518.9| 共9页
  • 作者单位

    V Karazin Kharkiv Natl Univ, Phys Dept, UA-61077 Kharkov, Ukraine|NSC KIPT, Inst Theoret Phys, UA-61108 Kharkov, Ukraine;

    V Karazin Kharkiv Natl Univ, Phys Dept, UA-61077 Kharkov, Ukraine;

    V Karazin Kharkiv Natl Univ, Phys Dept, UA-61077 Kharkov, Ukraine;

    V Karazin Kharkiv Natl Univ, Phys Dept, UA-61077 Kharkov, Ukraine;

    Goethe Univ, Phys Inst, D-60438 Frankfurt, Germany;

    V Karazin Kharkiv Natl Univ, Phys Dept, UA-61077 Kharkov, Ukraine|Goethe Univ, Phys Inst, D-60438 Frankfurt, Germany;

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