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Improving Coherence in Tantalum Transmon Qubits

ORAL

Abstract

Tantalum (Ta) transmon qubits exhibit record high relaxation and coherence times; however, a significant increase in coherence times is necessary to develop scalable quantum processors. Coherence times are limited by microwave dielectric loss in the constituent device materials; therefore, understanding and mitigating loss in these materials is important for achieving higher coherence devices. Recent work has quantified materials-based losses in Ta resonators and demonstrated that loss is dominated by saturable two-level systems (TLSs) in the amorphous tantalum surface oxide and bulk sapphire substrate. By studying the dependence of loss on temperature, microwave photon number, and device geometry, we investigate alternative materials and fabrication methods to further reduce surface and bulk losses in Ta-based resonators. We then apply these insights to the fabrication of transmon qubits to achieve higher relaxation and coherence times.

Publication: [1] Place, A.P.M., Rodgers, L.V.H., Mundada, P. et al. New material platform for superconducting transmon qubits with coherence times exceeding 0.3 milliseconds, Nat. Commun. 12, 1779 (2021)<br><br>[2] Crowley, K.D, McLellan, R.A., Dutta, A. et al. Disentangling Losses in Tantalum Superconducting Circuits, Phys. Rev. X 13, 041005 (2023).

Presenters

  • Matthew P Bland

    Princeton University

Authors

  • Matthew P Bland

    Princeton University

  • Faranak Bahrami

    Princeton University

  • Basil M Smitham

    Princeton University

  • Jeronimo G Martinez

    Princeton University

  • Atharv Joshi

    Princeton University

  • Elizabeth Hedrick

    Princeton University

  • Shashwat Kumar

    Princeton University

  • Paal H Prestegaard

    Princeton University

  • Alexander Pakpour-Tabrizi

    Princeton University

  • Apoorv Jindal

    Princeton University

  • Kevin Daniel Crowley

    Princeton University

  • Guangming Cheng

    Princeton University

  • Nan Yao

    Princeton University

  • Robert J Cava

    Princeton University

  • Nathalie P de Leon

    Princeton University

  • Andrew A Houck

    Princeton University