论文标题
比较间隙和无间隙纳米大小超导体的涡流动力学内的能量耗散机制
Comparing energy dissipation mechanisms within the vortex dynamics of gap and gapless nano-sized superconductors
论文作者
论文摘要
磁场和/或运输电流的存在可能导致涡流渗透超导体中。它们的运动会导致耗散和电阻状态,从而强烈影响超导器件(如单光子和单电子检测器)的性能。因此,了解介质超导体中的耗散机制不仅具有基本价值,而且对于进一步的技术进步也非常重要。在目前的工作中,我们通过使用时间依赖性的金茨堡 - landau理论,分析了由于局部诱导的电场而引起的耗散机制的贡献和相互作用。尽管经常被忽略,但我们表明,由于$ψ$的放松而引起的消散能量必须考虑到对总消散能量的足够描述。还分析了由于涡流运动及其在样品中的扩散而引起的温度的局部升高,其中热弛豫和涡流动力学的关节作用对于超导系统提出的耗散性能起着重要作用。
The presence of magnetic fields and/or transport currents can cause penetration of vortices in superconductors. Their motion leads to dissipation and resistive state arises, which in turn strongly affects the performance of superconducting devices such as single-photon and single-electron detectors. Therefore, an understanding of the dissipation mechanisms in mesoscopic superconductors is not only of fundamental value but also very important for further technological advances. In the present work, we analyzed the contributions and interplay of the dissipative mechanisms due to the locally induced electric field and an intrinsic relaxation of the superconducting order parameter, $Ψ$, in mesoscopic samples by using the time-dependent Ginzburg-Landau theory. Although often neglected, we show that the dissipated energy due to relaxation of $Ψ$ must be taken into account for an adequate description of the total dissipated energy. The local increase of the temperature due to vortex motion and its diffusion in the sample were also analyzed, where the joint effect of thermal relaxation and vortex dynamics plays an important role for the dissipative properties presented by the superconducting systems.