English

Localization and reduction of superconducting quantum coherent circuit losses

Quantum Physics 2020-12-15 v1 Materials Science

Abstract

Quantum sensing and computation can be realized with superconducting microwave circuits. Qubits are engineered quantum systems of capacitors and inductors with non-linear Josephson junctions. They operate in the single-excitation quantum regime, photons of 27μ27 \mueV at 6.5 GHz. Quantum coherence is fundamentally limited by materials defects, in particular atomic-scale parasitic two-level systems (TLS) in amorphous dielectrics at circuit interfaces.[1] The electric fields driving oscillating charges in quantum circuits resonantly couple to TLS, producing phase noise and dissipation. We use coplanar niobium-on-silicon superconducting resonators to probe decoherence in quantum circuits. By selectively modifying interface dielectrics, we show that most TLS losses come from the silicon surface oxide, and most non-TLS losses are distributed throughout the niobium surface oxide. Through post-fabrication interface modification we reduced TLS losses by 85% and non-TLS losses by 72%, obtaining record single-photon resonator quality factors above 5 million and approaching a regime where non-TLS losses are dominant. [1]M\"uller, C., Cole, J. H. & Lisenfeld, J. Towards understanding two-level-systems in amorphous solids: insights from quantum circuits. Rep. Prog. Phys. 82, 124501 (2019)

Keywords

Cite

@article{arxiv.2012.07604,
  title  = {Localization and reduction of superconducting quantum coherent circuit losses},
  author = {M. Virginia P. Altoé and Archan Banerjee and Cassidy Berk and Ahmed Hajr and Adam Schwartzberg and Chengyu Song and Mohammed Al Ghadeer and Shaul Aloni and Michael J. Elowson and John Mark Kreikebaum and Ed K. Wong and Sinead Griffin and Saleem Rao and Alexander Weber-Bargioni and Andrew M. Minor and David I. Santiago and Stefano Cabrini and Irfan Siddiqi and D. Frank Ogletree},
  journal= {arXiv preprint arXiv:2012.07604},
  year   = {2020}
}

Comments

10 pages, 3 figures, supplemental information 10 pages, 11 figures