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Illustration of strictly local dynamical symmetries

A system with a strictly local dynamical symmetry can be coupled to any external system (e.g. a cat) and will still persistently oscillate (see )

Credit: Vendi Jukic Buca, Pulci

Dr Berislav Buca

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Research theme

  • Fields, strings, and quantum dynamics
  • Quantum information and computation
  • Quantum materials
  • Quantum optics & ultra-cold matter

Sub department

  • Atomic and Laser Physics

Research groups

  • Quantum systems engineering
berislav.buca@physics.ox.ac.uk
Atmospheric Physics Clarendon Laboratory
  • About
  • Publications

Quantum synchronisation enabled by dynamical symmetries and dissipation

New Journal of Physics IOP Publishing 22 (2019) 013026

Authors:

Joseph Tindall, CS Munoz, Berislav Buca, D Jaksch

Abstract:

In nature, instances of synchronisation abound across a diverse range of environments. In the quantum regime, however, synchronisation is typically observed by identifying an appropriate parameter regime in a specific system. In this work we show that this need not be the case, identifying symmetry-based conditions which, when satisfied, guarantee completely synchronous, entangled limit cycles between the individual constituents of a generic open quantum system - no restrictions are placed on its microscopic details. We describe these systems as posssessing a strong dynamical symmetry and we prove that, to first order, they are completely robust to symmetry-breaking perturbations. Using these ideas we identify two central examples where synchronisation arises via this qualitatively new mechanism: a chain of quadratically dephased spin-1s and the many-body charge-dephased Hubbard model. In both cases, due to their dynamical symmetries, perfect phase-locking occurs throughout the system, regardless of the specific microscopic parameters or initial states. Furthermore, when these systems are perturbed, their non-linear responses elicit long-lived signatures of both phase and frequency-locking.

Symmetries and conservation laws in quantum trajectories: Dissipative freezing

Physical Review A American Physical Society 100:4 (2019) 042113

Authors:

C S谩nchez Mu帽oz, B Bu膷a, J Tindall, A Gonz谩lez-Tudela, D Jaksch, D Porras

Abstract:

In driven-dissipative systems, the presence of a strong symmetry guarantees the existence of several steady states belonging to different symmetry sectors. Here we show that, when a system with a strong symmetry is initialized in a quantum superposition involving several of these sectors, each individual stochastic trajectory will randomly select a single one of them and remain there for the rest of the evolution. Since a strong symmetry implies a conservation law for the corresponding symmetry operator on the ensemble level, this selection of a single sector from an initial superposition entails a breakdown of this conservation law at the level of individual realizations. Given that such a superposition is impossible in a classical, stochastic trajectory, this is a a purely quantum effect with no classical analogue. Our results show that a system with a closed Liouvillian gap may exhibit, when monitored over a single run of an experiment, a behaviour completely opposite to the usual notion of dynamical phase coexistence and intermittency, which are typically considered hallmarks of a dissipative phase transition. We discuss our results with a simple, realistic model of squeezed superradiance.

Exact large deviation statistics and trajectory phase transition of a deterministic boundary driven cellular automaton

Physical Review E American Physical Society (APS) 100:2 (2019) 020103

Authors:

Berislav Bu膷a, Juan P Garrahan, Toma啪 Prosen, Matthieu Vanicat

Heating-Induced Long-Range 畏 Pairing in the Hubbard Model

Physical Review Letters American Physical Society 123:3 (2019) 030603

Authors:

Joseph Tindall, Berislav Bu膷a, Jonathan Coulthard, D Jaksch

Abstract:

We show how, upon heating the spin degrees of freedom of the Hubbard model to infinite temperature, the symmetries of the system allow the creation of steady states with long-range correlations between 畏 pairs. We induce this heating with either dissipation or periodic driving and evolve the system towards a nonequilibrium steady state, a process which melts all spin order in the system. The steady state is identical in both cases and displays distance-invariant off-diagonal 畏 correlations. These correlations were first recognized in the superconducting eigenstates described in Yang鈥檚 seminal Letter [Phys. Rev. Lett. 63, 2144 (1989)], which are a subset of our steady states. We show that our results are a consequence of symmetry properties and entirely independent of the microscopic details of the model and the heating mechanism.

Non-stationary dynamics and dissipative freezing in squeezed superradiance

(2019)

Authors:

Carlos S谩nchez Mu帽oz, Berislav Bu膷a, Joseph Tindall, Alejandro Gonz谩lez-Tudela, Dieter Jaksch, Diego Porras

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