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Continuous and reversible tuning of the disorder-driven superconductor–insulator transition in bilayer graphene

机译:双层石墨烯中无序驱动的超导体-绝缘体转变的连续和可逆调谐

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摘要

The influence of static disorder on a quantum phase transition (QPT) is a fundamental issue in condensed matter physics. As a prototypical example of a disorder-tuned QPT, the superconductor–insulator transition (SIT) has been investigated intensively over the past three decades, but as yet without a general consensus on its nature. A key element is good control of disorder. Here, we present an experimental study of the SIT based on precise in-situ tuning of disorder in dual-gated bilayer graphene proximity-coupled to two superconducting electrodes through electrical and reversible control of the band gap and the charge carrier density. In the presence of a static disorder potential, Andreev-paired carriers formed close to the Fermi level in bilayer graphene constitute a randomly distributed network of proximity-induced superconducting puddles. The landscape of the network was easily tuned by electrical gating to induce percolative clusters at the onset of superconductivity. This is evidenced by scaling behavior consistent with the classical percolation in transport measurements. At lower temperatures, the solely electrical tuning of the disorder-induced landscape enables us to observe, for the first time, a crossover from classical to quantum percolation in a single device, which elucidates how thermal dephasing engages in separating the two regimes.
机译:静态无序对量子相变(QPT)的影响是凝聚态物理的基本问题。作为无序调整QPT的典型示例,过去三十年来,对超导体-绝缘体过渡(SIT)进行了深入研究,但尚未就其性质达成共识。一个关键因素是对疾病的良好控制。在这里,我们通过基于带隙和电荷载流子的可逆可逆控制的双门双层石墨烯的无序精确原位调节,对SIT进行了实验研究。在存在静态无序势的情况下,在双层石墨烯中形成接近费米能级的Andreev对载体构成了随机分布的邻近感应超导水坑网络。通过电选通可以轻松调整网络的格局,以在超导性开始时诱发渗流团簇。这由与运输测量中的经典渗滤一致的缩放行为证明。在较低的温度下,仅通过电学方法对无序诱发的景观进行调整,就可以使我们首次观察到在单个设备中从经典渗滤到量子渗滤的转换,这阐明了热相移是如何参与分隔两种状态的。

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