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Depairing Current at High Magnetic Fields in Vortex-Free High-Temperature Superconducting Nanowires

机译:在无涡旋高温超导纳米线中的高磁场代书机电流

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Superconductors are essential in many present and future technologies, from large-scale devices for medical imaging, accelerators, or fusion experiments to ultra-low-power superconducting electronics. However, their potential applicability, and particularly that of high-temperature super-conductors (HTS), is severely affected by limited performances at large magnetic fields and high temperatures, where their use is most needed. One of the main reasons for these limitations is the presence of quantized vortices, whose movements result in losses, internal noise, and reduced performances. The conventional strategy to overcome the flow of vortices is to pin them along artificial defects. Here, we theoretically and experimentally demonstrate that critical-current density in high-temperature superconductors can reach unprecedented high values at high fields and temperatures by preventing vortex entry. By tailoring the geometry, that is, reducing the width, W, of nanowire-patterned HTS films, the range of the Meissner state, for which no vortices are present, is extended up to very large applied field values, on the order of similar to 1 T. Current densities on the order of the depairing current can be sustained under high fields for a wide range of temperatures. Results may be relevant both for devising new conductors carrying depairing-current values at high temperatures and large magnetic fields and for reducing flux noise in sensors and quantum systems.
机译:超导体在许多现在和未来的技术中是必不可少的,从大规模的用于医学成像,加速器或融合实验到超低功耗超导电子设备。然而,它们的潜在适用性,特别是高温超导体(HTS)的适用性受到大磁场的有限性能和高温的严重影响,其中最需要其使用。这些限制的主要原因之一是存在量化涡流,其运动导致损耗,内部噪声和降低的性能。克服涡流流动的传统策略是沿着人工缺陷钉住它们。在这里,理论上和实验证明了高温超导体中的临界电流密度可以通过防止涡流进入在高领域和温度下达到前所未有的高值。通过定制几何形状,即减小纳米线图案的HTS薄膜的宽度W,WEASNER状态的范围,没有涡流,其延伸到非常大的应用场值,即在类似的顺序到1吨的电流密度可以在高度温度范围内持续。结果可以在高温和大磁场下设计携带存档电流值的新导体以及用于减少传感器和量子系统中的磁通噪声。

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