Stabilizing a Bosonic Qubit Using Colored Dissipation
Abstract
Protected qubits such as the 0−π qubit, and bosonic qubits including cat qubits and Gottesman-Kitaev-Preskill (GKP) qubits offer advantages for fault tolerance. Some of these protected qubits (e.g., 0−π qubit and Kerr-cat qubit) are stabilized by Hamiltonians which have (near-)degenerate ground state manifolds with large energy gaps to the excited state manifolds. Without dissipative stabilization mechanisms the performance of such energy-gap-protected qubits can be limited by leakage to excited states. Here, we propose a scheme for dissipatively stabilizing an energy-gap-protected qubit using colored (i.e., frequency-selective) dissipation without inducing errors in the ground state manifold. Concretely we apply our colored dissipation technique to Kerr-cat qubits and propose colored Kerr-cat qubits which are protected by an engineered colored single-photon loss. When applied to the Kerr-cat qubits our scheme significantly suppresses leakage-induced bit-flip errors (which we show are a limiting error mechanism) while only using linear interactions. Beyond the benefits to the Kerr-cat qubit we also show that our frequency-selective loss technique can be applied to a broader class of protected qubits.
Additional Information
© 2022 American Physical Society. Received 11 August 2021; revised 16 December 2021; accepted 16 February 2022; published 14 March 2022. We thank Arne L. Grimsmo, Matthew H. Matheny, and Gil Refael for useful comments on the manuscript.Attached Files
Published - PhysRevLett.128.110502.pdf
Accepted Version - 2107.09198.pdf
Supplemental Material - supplementary_material.pdf
Files
Additional details
- Alternative title
- Colored Kerr cat qubits
- Eprint ID
- 111013
- Resolver ID
- CaltechAUTHORS:20210922-210830647
- Created
-
2021-09-23Created from EPrint's datestamp field
- Updated
-
2022-04-05Created from EPrint's last_modified field
- Caltech groups
- AWS Center for Quantum Computing, Institute for Quantum Information and Matter