Interacting spins in a cavity: finite size effects and symmetry-breaking dynamics
S{\o}ren Gammelmark, Klaus M{\o}lmer

TL;DR
This paper investigates finite size effects and symmetry-breaking dynamics in a spin chain coupled to a cavity, revealing significant deviations from mean field predictions and measurement-induced symmetry-breaking phenomena.
Contribution
It provides a detailed analysis of finite size effects, phase transition signatures, and measurement-induced symmetry-breaking in a spin-cavity system, extending mean field theory results.
Findings
Finite size effects cause significant deviations from mean field predictions.
Photon number fluctuations grow with chain size near critical points.
Measurement induces symmetry-breaking on the timescale of information gathering.
Abstract
We calculate the ground state and simulate the dynamics of a finite chain of spins with Ising nearest-neighbor interactions and a Dicke collective spin interaction with a single mode cavity field. We recover the signatures of first and second order phase transitions predicted by mean field theory, while for small chains, we find significant and non-trivial finite size effects. Below the first order phase transition, even quite large spin chains of 30-40 spins give rise to a mean photon number and number fluctuations significantly above the mean field vacuum result. Near the second order phase critical point, our calculations reveal photon number fluctuations that grow beyond Poisson statistics with the size of the spin chain. We simulate the stochastic evolution of the system when the cavity output field is subject to homodyne detection. For an initial state close to the first order…
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