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Mesoscopic mean-field theory for spin-boson chains in quantum optical systems

Quantum Physics 2015-06-12 v1

Abstract

We present a theoretical description of a system of many spins strongly coupled to a bosonic chain. We rely on the use of a spin-wave theory describing the Gaussian fluctuations around the mean-field solution, and focus on spin-boson chains arising as a generalization of the Dicke Hamiltonian. Our model is motivated by experimental setups such as trapped ions, or atoms/qubits coupled to cavity arrays. This situation corresponds to the cooperative (E\otimesβ\beta) Jahn-Teller distortion studied in solid-state physics. However, the ability to tune the parameters of the model in quantum optical setups opens up a variety of novel intriguing situations. The main focus of this paper is to review the spin-wave theoretical description of this problem as well as to test the validity of mean-field theory. Our main result is that deviations from mean-field effects are determined by the interplay between magnetic order and mesoscopic cooperativity effects, being the latter strongly size-dependent.

Keywords

Cite

@article{arxiv.1212.4709,
  title  = {Mesoscopic mean-field theory for spin-boson chains in quantum optical systems},
  author = {Pedro Nevado and Diego Porras},
  journal= {arXiv preprint arXiv:1212.4709},
  year   = {2015}
}

Comments

To appear in EPJ ST issue on "Novel Quantum Phases and Mesoscopic Physics in Quantum Gases"

R2 v1 2026-06-21T22:57:18.698Z