Dissipative phase transitions and passive error correction
- Creators
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Liu, Yu-Jie
- Lieu, Simon
Abstract
We classify different ways to passively protect classical and quantum information, i.e., we do not allow for syndrome measurements, in the context of local Lindblad models for spin systems. Within this family of models, we suggest that passive error correction is associated with nontrivial phases of matter and propose a definition for dissipative phases based on robust steady-state degeneracy of a Lindbladian in the thermodynamic limit. We study three thermalizing models in this context: the two-dimensional (2D) Ising model, the 2D toric code, and the 4D toric code. In the low-temperature phase, the 2D Ising model hosts a robust classical steady-state degeneracy, while the 4D toric code hosts a robust quantum steady-state degeneracy. We perturb the models with terms that violate detailed balance and observe that qualitative features remain unchanged, suggesting that ℤ₂ symmetry breaking in a Lindbladian is useful to protect a classical bit while intrinsic topological order protects a qubit.
Copyright and License
© 2024 American Physical Society.
Acknowledgement
We sincerely thank Victor Albert, Alexey Gorshkov, and Oles Shtanko for useful discussions. Y.-J.L acknowledges support from the Max Planck Gesellschaft through the International Max Planck Research School for Quantum Science and Technology and the Munich Quantum Valley, which is supported by the Bavarian state government with funds from the Hightech Agenda Bayern Plus. S.L. was supported by the NIST NRC Research Postdoctoral Associateship.
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Additional details
- ISSN
- 2469-9934
- Max Planck Society
- National Institute of Standards and Technology
- Caltech groups
- AWS Center for Quantum Computing