Engineering of niobium surfaces through accelerated neutral atom beam technology for quantum applications

Author:

Kar Soumen1ORCID,Weiland Conan2ORCID,Zhou Chenyu3ORCID,Bhatia Ekta1ORCID,Martinick Brian1,Nalaskowski Jakub1ORCID,Mucci John1,Olson Stephen1,Hung Pui Yee1,Wells Ilyssa1,Frost Hunter4ORCID,Johnson Corbet S.1ORCID,Murray Thomas1,Kaushik Vidya1,Kirkpatrick Sean5ORCID,Chau Kiet5,Walsh Michael J.5,Liu Mingzhao3ORCID,Papa Rao Satyavolu S.14ORCID

Affiliation:

1. NY CREATES 1 , Albany, New York 12203, USA

2. Material Measurement Laboratory, National Institute of Standards and Technology 2 , Gaithersburg, Maryland 20899, USA

3. Center for Functional Nanomaterials, Brookhaven National Laboratory 3 , Upton, New York 19973, USA

4. College of Nanoscale Science and Engineering, SUNY Polytechnic Institute 4 , Albany, New York 12203, USA

5. Neutral Physics Corporation 5 , Billerica, Massachusetts 01821, USA

Abstract

A major roadblock to scalable quantum computing is phase decoherence and energy relaxation caused by qubits interacting with defect-related two-level systems (TLSs). Native oxides present on the surfaces of superconducting metals used in quantum devices are acknowledged to be a source of TLS that decrease qubit coherence times. Reducing microwave loss by “surface engineering” (i.e., replacing the uncontrolled native oxide of superconducting metals with a thin, stable surface with predictable characteristics) can be a key enabler for pushing performance forward with devices of higher intrinsic quality factor. In this work, we present a novel approach to replace the native oxide of niobium (typically formed in an uncontrolled fashion when its pristine surface is exposed to air) with an engineered oxide, using a room-temperature process that leverages accelerated neutral atom beam (ANAB) technology at 300 mm wafer scale. This ANAB is composed of a mixture of argon and oxygen, with tunable energy per atom, which is rastered across the wafer surface. The ANAB-engineered Nb-oxide thickness was found to vary from 2 to 6 nm depending on ANAB process parameters. The modeling of variable-energy x-ray photoelectron spectroscopy data confirms the thickness and compositional control of Nb surface oxide by the ANAB process. These results correlate well with those from transmission electron microscopy and x-ray reflectometry. Since ANAB is broadly applicable to material surfaces, the present study indicates its promise for modification of the surfaces of superconducting quantum circuits to achieve longer coherence times.

Funder

Office of Science

Co-design Center for Quantum Advantage

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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