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Abstract
Bang-bang dynamical decoupling protects an open quantum system from decoherence due to its interaction with the surrounding bath/environment. In its standard form, this is achieved by strongly kicking the system with cycles of unitary operations, which average out the interaction Hamiltonian. In this paper, we generalize the notion of dynamical decoupling to repeated kicks with a quantum channel, which is applied to the bath. We derive necessary and sufficient conditions on the employed quantum channel and find that bath dynamical decoupling works if and only if the kick is ergodic. Furthermore, we study in which circumstances completely positive trace-preserving (CPTP) kicks on a mono-partite quantum system induce quantum Zeno dynamics with its Hamiltonian cancelled out. This does not require the ergodicity of the kicks, and the absence of decoherence-free subsystems is both necessary and sufficient. While the standard unitary dynamical decoupling is essentially the same as the quantum Zeno dynamics, our investigation implies that this is no longer true in the case of CPTP kicks. To derive our results, we prove some spectral properties of ergodic quantum channels, that might be of independent interest. Our approach establishes an enhanced and unified mathematical understanding of several recent experimental demonstrations and might form the basis of new dynamical decoupling schemes that harness environmental noise degrees of freedom.
| Original language | English |
|---|---|
| Article number | 045305 |
| Pages (from-to) | 1-31 |
| Number of pages | 31 |
| Journal | Journal of Physics A: Mathematical and Theoretical |
| Volume | 58 |
| Issue number | 4 |
| DOIs | |
| Publication status | Published - 22 Jan 2025 |
Bibliographical note
© 2025 The Author(s). Published by IOP Publishing Ltd. Version archived for private and non-commercial use with the permission of the author/s and according to publisher conditions. For further rights please contact the publisher.Keywords
- decoherence-free subsystems
- dynamical decoupling
- ergodic quantum channels
- quantum control theory
- quantum error suppression
Fingerprint
Dive into the research topics of 'Bath dynamical decoupling with a quantum channel'. Together they form a unique fingerprint.Projects
- 2 Finished
-
UTS led: Pushing the digital limits in quantum simulation for advanced manufacturing
Langford, N. (Chief Investigator), Dehollain, J. (Chief Investigator), Burgarth, D. (Primary Chief Investigator), Berry, D. (Chief Investigator) & Heyl, M. (Partner Investigator)
26/03/21 → 25/03/24
Project: Research
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Robust Quantum Control in the Noisy Intermediate-Scale Quantum Era
Burgarth, D. (Primary Chief Investigator) & Steel, M. (Sponsor)
3/02/20 → 2/02/24
Project: Other
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