Shadow-wall lithography of ballistic superconductor–semiconductor quantum devices

Author:

Heedt SebastianORCID,Quintero-Pérez Marina,Borsoi FrancescoORCID,Fursina Alexandra,van Loo Nick,Mazur Grzegorz P.ORCID,Nowak Michał P.ORCID,Ammerlaan Mark,Li Kongyi,Korneychuk Svetlana,Shen Jie,van de Poll May An Y.,Badawy GhadaORCID,Gazibegovic Sasa,de Jong Nick,Aseev Pavel,van Hoogdalem Kevin,Bakkers Erik P. A. M.ORCID,Kouwenhoven Leo P.

Abstract

AbstractThe realization of hybrid superconductor–semiconductor quantum devices, in particular a topological qubit, calls for advanced techniques to readily and reproducibly engineer induced superconductivity in semiconductor nanowires. Here, we introduce an on-chip fabrication paradigm based on shadow walls that offers substantial advances in device quality and reproducibility. It allows for the implementation of hybrid quantum devices and ultimately topological qubits while eliminating fabrication steps such as lithography and etching. This is critical to preserve the integrity and homogeneity of the fragile hybrid interfaces. The approach simplifies the reproducible fabrication of devices with a hard induced superconducting gap and ballistic normal-/superconductor junctions. Large gate-tunable supercurrents and high-order multiple Andreev reflections manifest the exceptional coherence of the resulting nanowire Josephson junctions. Our approach enables the realization of 3-terminal devices, where zero-bias conductance peaks emerge in a magnetic field concurrently at both boundaries of the one-dimensional hybrids.

Funder

Dutch Organization for Scientific Research (NWO) Foundation for Fundamental Research on Matter (FOM) Microsoft Corporation Station Q Foundation for Polish Science

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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