Quantum phase transitions in two-dimensional superconductors: a review on recent experimental progress.

Ziqiao Wang, Yi Liu, Chengcheng Ji, Jian Wang
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Abstract

Superconductor-insulator/metal transition (SMT) as a paradigm of quantum phase transition has been a research highlight over the last three decades. Benefit from recent developments in the fabrication and measurements of two-dimensional (2D) superconducting films and nanodevices, unprecedented quantum phenomena have been revealed in the quantum phase transitions of 2D superconductors. In this review, we introduce the recent progress on quantum phase transitions in 2D superconductors, focusing on the quantum Griffiths singularity (QGS) and anomalous metal state. Characterized by a divergent critical exponent when approaching zero temperature, QGS of SMT is discovered in ultrathin crystalline Ga films and subsequently detected in various 2D superconductors. The universality of QGS indicates the profound influence of quenched disorder on quantum phase transitions. Besides, in a 2D superconducting system, whether a metallic ground state can exist is a long-sought mystery. Early experimental studies indicate an intermediate metallic state in the quantum phase transition of 2D superconductors. Recently, in high-temperature superconducting films with patterned nanopores, a robust anomalous metal state (i.e. quantum metal or Bose metal) has been detected, featured as the saturated resistance in the low temperature regime. Moreover, the charge-2equantum oscillations are observed in nanopatterned films, indicating the bosonic nature of the anomalous metal state and ending the debate on whether bosons can exist as a metal. The evidences of the anomalous metal states have also been reported in crystalline epitaxial thin films and exfoliated nanoflakes, as well as granular composite films. High quality filters are used in these works to exclude the influence of external high frequency noises in ultralow temperature measurements. The observations of QGS and metallic ground states in 2D superconductors not only reveal the prominent role of quantum fluctuations and dissipations but also provide new perspective to explore quantum phase transitions in superconducting systems.

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二维超导体中的量子相变:近期实验进展综述。
超导体-绝缘体/金属转变(SIT/SMT)作为量子相变的典范,是过去三十年来的研究亮点。得益于二维(2D)超导薄膜和纳米器件制备与测量的最新进展,二维超导体的量子相变揭示了前所未有的量子现象。在这篇综述中,我们将介绍二维超导体量子相变的最新进展,重点关注量子格里菲斯奇点(QGS)和反常金属态。量子格里菲思奇点的特征是接近零温时临界指数发散,它在超薄结晶镓薄膜中被发现,随后又在各种二维超导体中被探测到。QGS 的普遍性表明了淬火无序对量子相变的深刻影响。此外,在二维超导体系中,金属基态是否存在也是一个探索已久的谜。早期的实验研究表明,二维超导体的量子相变中存在中间金属态。最近,在带有图案化纳米孔的高温超导薄膜中,人们探测到了一种稳健的反常金属态(即量子金属或玻色金属),其特征是在低温状态下具有饱和电阻。此外,在纳米图案薄膜中还观察到了电荷-2e 量子振荡,这表明了反常金属态的玻色子性质,结束了玻色子能否作为金属存在的争论。在晶体外延薄膜和剥离纳米片以及颗粒状复合薄膜中也有关于反常金属态的证据报道。在这些工作中使用了高质量滤波器,以排除超低温测量中外部高频噪声的影响。对二维超导体中 QGS 和金属基态的观测不仅揭示了量子波动和耗散的重要作用,而且为探索超导系统中的量子相变提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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