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Driving a Superconductor to Insulator Transition with Random Gauge Fields

机译:用随机仪表场驱动超导体到绝缘子的过渡

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摘要

Typically the disorder that alters the interference of particle waves to produce Anderson localization is potential scattering from randomly placed impurities. Here we show that disorder in the form of random gauge fields that act directly on particle phases can also drive localization. We present evidence of a superfluid bose glass to insulator transition at a critical level of this gauge field disorder in a nano-patterned array of amorphous Bi islands. This transition shows signs of metallic transport near the critical point characterized by a resistance , indicative of a quantum phase transition. The critical disorder depends on interisland coupling in agreement with recent Quantum Monte Carlo simulations. We discuss how this disorder tuned SIT differs from the common frustration tuned SIT that also occurs in magnetic fields. Its discovery enables new high fidelity comparisons between theoretical and experimental studies of disorder effects on quantum critical systems.
机译:通常,改变粒子波干扰以产生安德森定位的无序是随机放置的杂质引起的电势散射。在这里,我们表明,直接作用于粒子相的随机应变场形式的无序也可以驱动定位。我们提供了在无定形Bi岛的纳米图案阵列中,在该规范场无序的临界水平上,超流体玻纤玻璃向绝缘体过渡的证据。该转变在临界点附近显示出金属传输的迹象,其特征是电阻,表明量子相变。与最近的量子蒙特卡洛模拟相一致,严重疾病取决于岛间耦合。我们讨论了这种无序调整的SIT与常见的无奈调整的SIT(也发生在磁场中)有何不同。它的发现使无序效应对量子关键系统的理论研究与实验研究之间能够进行新的高保真度比较。

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