Ultrathin Magnesium‐Based Coating as an Efficient Oxygen Barrier for Superconducting Circuit Materials

Author:

Zhou Chenyu1ORCID,Mun Junsik12ORCID,Yao Juntao23ORCID,Anbalagan Aswin kumar4ORCID,Hossain Mohammad D.5ORCID,McLellan Russell A.6ORCID,Li Ruoshui17ORCID,Kisslinger Kim1,Li Gengnan1ORCID,Tong Xiao1ORCID,Head Ashley R.1ORCID,Weiland Conan8ORCID,Hulbert Steven L.4ORCID,Walter Andrew L.4,Li Qiang29ORCID,Zhu Yimei2ORCID,Sushko Peter V.5ORCID,Liu Mingzhao1ORCID

Affiliation:

1. Center for Functional Nanomaterials Brookhaven National Laboratory Upton NY 11973 USA

2. The Condensed Matter Physics and Materials Science Department Brookhaven National Laboratory Upton NY 11973 USA

3. Department of Materials Science and Chemical Engineering Stony Brook University Stony Brook NY 11794 USA

4. National Synchrotron Light Source II Brookhaven National Laboratory Upton NY 11973 USA

5. Physical and Computational Sciences Directorate Pacific Northwest National Laboratory Richland WA 99354 USA

6. Department of Electrical and Computer Engineering Princeton University Princeton NJ 08540 USA

7. Department of Chemistry Stony Brook University Stony Brook NY 11794 USA

8. Material Measurement Laboratory National Institute of Standard and Technology Gaithersburg MD 20899 USA

9. Department of Physics and Astronomy Stony Brook University Stony Brook NY 11794 USA

Abstract

AbstractScaling up superconducting quantum circuits based on transmon qubits necessitates substantial enhancements in qubit coherence time. Over recent years, tantalum (Ta) has emerged as a promising candidate for transmon qubits, surpassing conventional counterparts in terms of coherence time. However, amorphous surface Ta oxide layer may introduce dielectric loss, ultimately placing a limit on the coherence time. In this study, a novel approach for suppressing the formation of tantalum oxide using an ultrathin magnesium (Mg) capping layer is presented. Synchrotron‐based X‐ray photoelectron spectroscopy studies demonstrate that oxide is confined to an extremely thin region directly beneath the Mg/Ta interface. Additionally, it is demonstrated that the superconducting properties of thin Ta films are improved following the Mg capping, exhibiting sharper and higher‐temperature transitions to superconductive and magnetically ordered states. Moreover, an atomic‐scale mechanistic understanding of the role of the capping layer in protecting Ta from oxidation is established based on computational modeling. This work provides valuable insights into the formation mechanism and functionality of surface tantalum oxide, as well as a new materials design principle with the potential to reduce dielectric loss in superconducting quantum materials. Ultimately, the findings pave the way for the realization of large‐scale, high‐performance quantum computing systems.

Funder

U.S. Department of Energy

Office of Science

Brookhaven National Laboratory

Basic Energy Sciences

Pacific Northwest National Laboratory

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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