English

Emergent time crystals from phase-space noncommutative quantum mechanics

Quantum Physics 2022-11-23 v1

Abstract

It has been argued that the existence of time crystals requires a spontaneous breakdown of the continuous time translation symmetry so to account for the unexpected non-stationary behavior of quantum observables in the ground state. Our point is that such effects do emerge from position (q^i\hat{q}_i) and/or momentum (p^i\hat{p}_i) noncommutativity, i.e., from [q^i,q^j]0[\hat{q}_i,\,\hat{q}_j]\neq 0 and/or [p^i,p^j]0[\hat{p}_i,\,\hat{p}_j]\neq 0 (for iji\neq j). In such a context, a predictive analysis is carried out for the 22-dim noncommutative quantum harmonic oscillator through a procedure supported by the Weyl-Wigner-Groenewold-Moyal framework. This allows for the understanding of how the phase-space noncommutativity drives the amplitude of periodic oscillations identified as time crystals. A natural extension of our analysis also shows how the spontaneous formation of time quasi-crystals can arise.

Keywords

Cite

@article{arxiv.2207.00346,
  title  = {Emergent time crystals from phase-space noncommutative quantum mechanics},
  author = {Alex E. Bernardini and Orfeu Bertolami},
  journal= {arXiv preprint arXiv:2207.00346},
  year   = {2022}
}

Comments

12 pages, 03 figures

R2 v1 2026-06-24T12:10:58.714Z