论文标题

在分形系统中具有近距性诱导的超导性的强相相干性和涡旋物质

Strong phase coherence and vortex matter in a fractal system with proximity-induced superconductivity

论文作者

Teramachi, Nanami, Hashimoto, Aoi, Nakaaki, Iku, Ooi, Shuuichi, Tachiki, Minoru, Arisawa, Shunichi, Seto, Yusuke, Sakurai, Takahiro, Ohta, Hitoshi, Valenta, Jaroslav, Tsujii, Naohito, Mori, Takao, Uchino, Takashi

论文摘要

正常/超导体异质结构的接近效应是一种有趣的现象,因为正常侧具有具有诱导间隙的超导体的性质。然而,正常区域内涡流的结构和固定特性仍然很少了解。在这里,我们报告了〜30卷的接近耦合mg/mgO/mgb2系统的结构和超导性能。 MGB2的超导导体的%,其中MGB2纳米流是分形式分布的,以形成具有干净界面的接近网络。电导率和磁性测量表明,该接近耦合的系统充当了与各向同性固定的完全相干超导体。磁光成像还显示出相当均匀的通量密度分布,没有明显的粒度。此外,我们通过扫描超导量子界面设备显微镜观察到量化的接近涡流及其聚类行为。这些结果表明,与常规颗粒超导体的情况相反,本样品中的晶界具有很高的临界电流,并且具有较高的涡旋固定效率,从而导致强大的相相干状态,而不论MGB2纳米GRAINS的低体积分数。该发现不仅揭示了接近性诱导的涡旋的特征,而且还表现出了近端耦合分形系统的出色相锁能力。

The proximity effect in normal/superconductor heterostructures is an intriguing phenomenon in that the normal side takes on the properties of a superconductor with an induced gap. However, the structural and pinning properties of vortices inside the normal regions remain poorly understood. Here, we report structure and superconducting properties of a proximity-coupled Mg/MgO/MgB2 system with ~30 vol. % of superconducting MgB2, in which MgB2 nanograins are distributed in a fractal manner to form a proximity network with clean interfaces. Conductivity and magnetic measurements demonstrate that this proximity-coupled system acts as a fully phase coherent superconductor with isotropic pinning. Magneto-optical imaging also reveals a rather homogeneous flux density distribution with no apparent granularity. Furthermore, we observe quantized proximity vortices and their clustering behavior by scanning superconducting quantum interface device microscopy. These results show that in contrast to the case of conventional granular superconductors, the grain boundaries in the present sample carry high critical currents and have high vortex pinning efficiency, resulting in a robust phase coherent state irrespective of the low volume fraction of the MgB2 nanograins. This finding not only reveals the features of proximity-induced vortices, but also demonstrates an excellent phase-locked capability of the proximity-coupled fractal system.

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