English

Preserving phase coherence and linearity in cat qubits with exponential bit-flip suppression

Quantum Physics 2025-04-29 v2

Abstract

Cat qubits, a type of bosonic qubit encoded in a harmonic oscillator, can exhibit an exponential noise bias against bit-flip errors with increasing mean photon number. Here, we focus on cat qubits stabilized by two-photon dissipation, where pairs of photons are added and removed from a harmonic oscillator by an auxiliary, lossy buffer mode. This process requires a large loss rate and strong nonlinearities of the buffer mode that must not degrade the coherence and linearity of the oscillator. In this work, we show how to overcome this challenge by coloring the loss environment of the buffer mode with a multi-pole filter and optimizing the circuit to take into account additional inductances in the buffer mode. Using these techniques, we achieve near-ideal enhancement of cat-qubit bit-flip times with increasing photon number, reaching over 0.10.1 seconds with a mean photon number of only 44. Concurrently, our cat qubit remains highly phase coherent, with phase-flip times corresponding to an effective lifetime of T1,eff70T_{1,\text{eff}} \simeq 70 μ\mus, comparable with the bare oscillator lifetime. We achieve this performance even in the presence of an ancilla transmon, used for reading out the cat qubit states, by engineering a tunable oscillator-ancilla dispersive coupling. Furthermore, the low nonlinearity of the harmonic oscillator mode allows us to perform pulsed cat-qubit stabilization, an important control primitive, where the stabilization can remain off for a significant fraction (e.g., two thirds) of a 3 μs3~\mathrm{\mu s} cycle without degrading bit-flip times. These advances are important for the realization of scalable error-correction with cat qubits, where large noise bias and low phase-flip error rate enable the use of hardware-efficient outer error-correcting codes.

Keywords

Cite

@article{arxiv.2409.17556,
  title  = {Preserving phase coherence and linearity in cat qubits with exponential bit-flip suppression},
  author = {Harald Putterman and Kyungjoo Noh and Rishi N. Patel and Gregory A. Peairs and Gregory S. MacCabe and Menyoung Lee and Shahriar Aghaeimeibodi and Connor T. Hann and Ignace Jarrige and Guillaume Marcaud and Yuan He and Hesam Moradinejad and John Clai Owens and Thomas Scaffidi and Patricio Arrangoiz-Arriola and Joe Iverson and Harry Levine and Fernando G. S. L. Brandão and Matthew H. Matheny and Oskar Painter},
  journal= {arXiv preprint arXiv:2409.17556},
  year   = {2025}
}

Comments

Comments welcome!

R2 v1 2026-06-28T18:57:42.208Z