约瑟夫森效应
超导电性
量子计算机
超导量子计算
量子位元
半导体
凝聚态物理
锗
材料科学
光电子学
量子
物理
工程物理
硅
量子力学
作者
Alberto Tosato,Vukan Levajac,Ji‐Yin Wang,Casper J. Boor,Francesco Borsoi,Marc Botifoll,Carla Borja,Sara Martí‐Sánchez,Jordi Arbiol,Amir Sammak,Menno Veldhorst,Giordano Scappucci
标识
DOI:10.1038/s43246-023-00351-w
摘要
The co-integration of spin, superconducting, and topological systems is emerging as an exciting pathway for scalable and high-fidelity quantum information technology. High-mobility planar germanium is a front-runner semiconductor for building quantum processors with spin-qubits, but progress with hybrid superconductor-semiconductor devices is hindered because obtaining a superconducting gap free of subgap states (hard gap) has proven difficult. Here we solve this challenge by developing a low-disorder, oxide-free interface between high-mobility planar germanium and a germanosilicide parent superconductor. This superconducting contact is formed by the thermally-activated solid phase reaction between a metal (Pt) and the semiconductor heterostructure (Ge/SiGe). Electrical characterization reveals near-unity transparency in Josephson junctions and, importantly, a hard induced superconducting gap in quantum point contacts. Furthermore, we demonstrate phase control of a Josephson junction and study transport in a gated two-dimensional superconductor-semiconductor array towards scalable architectures. These results expand the quantum technology toolbox in germanium and provide new avenues for exploring monolithic superconductor-semiconductor quantum circuits towards scalable quantum information processing.
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