English

Enhancing the Coherence of Superconducting Quantum Bits with Electric Fields

Quantum Physics 2023-03-31 v2 Superconductivity

Abstract

In the endeavour to make quantum computers a reality, integrated superconducting circuits have become a promising architecture. A major challenge of this approach is decoherence originating from spurious atomic tunneling defects at the interfaces of qubit electrodes, which may resonantly absorb energy from the qubit's oscillating electric field and reduce the qubit's energy relaxation time T1T_1. Here, we show that qubit coherence can be improved by tuning dominating defects away from the qubit resonance using an applied DC-electric field. We demonstrate a method that optimizes the applied field bias and enhances the 30-minute averaged qubit T1T_1 time by 23\%. We also discuss how local gate electrodes can be implemented in superconducting quantum processors to enable simultaneous in-situ coherence optimization of individual qubits.

Keywords

Cite

@article{arxiv.2208.01570,
  title  = {Enhancing the Coherence of Superconducting Quantum Bits with Electric Fields},
  author = {Jürgen Lisenfeld and Alexander Bilmes and Alexey V. Ustinov},
  journal= {arXiv preprint arXiv:2208.01570},
  year   = {2023}
}

Comments

5.5 pages and 4 figures (main Text), plus 11 pages with supplementary figures discussing additional loss via the DC-electrode, how the T1 improvement reduces over time after E-field optimization, and plots of the complete data set

R2 v1 2026-06-25T01:25:13.387Z