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Quantum Algorithms
Non-Hermitian Discrete Time Crystals
arXiv
Authors: Rozhin Yousefjani, Angelo Carollo, Krzysztof Sacha, Saif Al-Kuwari, Abolfazl Bayat
Year
2024
Paper ID
37477
Status
Preprint
Abstract Read
~2 min
Abstract Words
119
Citations
N/A
Abstract
Discrete time crystals (DTC) exhibit a special non-equilibrium phase of matter in periodically driven many-body systems with spontaneous breaking of time translational symmetry. The presence of decoherence generally enhances thermalization and destroys the coherence required for the existence of DTC. In this letter, we devise a mechanism for establishing a stable DTC with period-doubling oscillations in an open quantum system that is governed by a properly tailored non-Hermitian Hamiltonian. We find a specific class of non-reciprocal couplings in our non-Hermitian dynamics which prevents thermalization through eigenstate ordering. Such choice of non-Hermitian dynamics, significantly enhances the stability of the DTC against imperfect pulses. Through a comprehensive analysis, we determine the phase diagram of the system in terms of pulse imperfection.
Why This Paper Matters
- It adds a 2024 reference point for readers tracking recent quantum research.
- Discrete time crystals (DTC) exhibit a special non-equilibrium phase of matter in periodically driven many-body systems with spontaneous breaking of time translational symmetry.
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