论文标题

魔术角石墨烯隧道设备中高度可调的连接和非局部约瑟夫森效应

Highly Tunable Junctions and Nonlocal Josephson Effect in Magic Angle Graphene Tunneling Devices

论文作者

Rodan-Legrain, Daniel, Cao, Yuan, Park, Jeong Min, de la Barrera, Sergio C., Randeria, Mallika T., Watanabe, Kenji, Taniguchi, Takashi, Jarillo-Herrero, Pablo

论文摘要

魔法角扭曲的双层石墨烯(MATBG)最近成为一个高度可调的二维(2D)材料平台,表现出各种相位,例如金属,绝缘体和超导体状态。对这些阶段的局部静电控制可能会使以前在其他单一材料平台中无法实现的多功能量子设备创建。在这里,我们利用MATBG的电气可调节性向工程师约瑟夫森连接和隧道晶体管的工程师都在一种材料中,仅由静电门定义。我们的多门装置几何形状可以完全控制约瑟夫森交界处,并能够独立调整弱连接,障碍和隧道电极。我们表明,这些纯粹的2D MATBG约瑟夫森连接在磁场中表现出非局部电动力学,与超薄超导体的珍珠理论一致。利用MATBG的固有带镜头,我们还展示了同一MATBG设备内的整体边缘隧道谱图,并在超导阶段测量MATBG的能量光谱。此外,通过诱导双屏障几何形状,这些设备可以作为单电子晶体管操作,显示出库仑封锁。这些MATBG隧道设备具有多功能功能包含在单个材料中,可能会在基于石墨烯的可调超导码头,芯片上超导电路和下一代量子量子纳米电气中的应用中应用。

Magic-angle twisted bilayer graphene (MATBG) has recently emerged as a highly tunable two-dimensional (2D) material platform exhibiting a wide range of phases, such as metal, insulator, and superconductor states. Local electrostatic control over these phases may enable the creation of versatile quantum devices that were previously not achievable in other single material platforms. Here, we exploit the electrical tunability of MATBG to engineer Josephson junctions and tunneling transistors all within one material, defined solely by electrostatic gates. Our multi-gated device geometry offers complete control over the Josephson junction, with the ability to independently tune the weak link, barriers, and tunneling electrodes. We show that these purely 2D MATBG Josephson junctions exhibit nonlocal electrodynamics in a magnetic field, in agreement with the Pearl theory for ultrathin superconductors. Utilizing the intrinsic bandgaps of MATBG, we also demonstrate monolithic edge tunneling spectroscopy within the same MATBG devices and measure the energy spectrum of MATBG in the superconducting phase. Furthermore, by inducing a double barrier geometry, the devices can be operated as a single-electron transistor, exhibiting Coulomb blockade. These MATBG tunneling devices, with versatile functionality encompassed within a single material, may find applications in graphene-based tunable superconducting qubits, on-chip superconducting circuits, and electromagnetic sensing in next-generation quantum nanoelectronics.

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