Decoherence and entanglement in a bosonic Josephson junction: Bose-enhanced quantum-Zeno control of phase-diffusion
Y. Khodorkovsky, G. Kurizki, and A. Vardi

TL;DR
This paper investigates how different types of decoherence affect phase diffusion in a two-site Bose-Hubbard model, revealing that environmental interactions can either accelerate or slow down coherence loss, with effects amplified by many-body quantum phenomena.
Contribution
It demonstrates that decoherence can be controlled to either suppress or enhance phase diffusion, highlighting a many-body quantum-Zeno effect influenced by system-bath interactions and particle number.
Findings
Local-site noise enhances phase diffusion.
Site-indiscriminate noise slows coherence loss.
Decoherence effects are amplified with increasing particle number.
Abstract
We study the effect of decoherence on dynamical phase diffusion in the two-site Bose-Hubbard model. Starting with an odd parity excited coherent state, the initial loss of single particle coherence varies from small bound oscillations in the Rabi regime, through hyperbolic depletion in the Josephson regime, to a Gaussian decay in the Fock regime. The inclusion of local-site noise, measuring the relative number difference between the modes, is shown to enhance phase-diffusion. In comparison, site-indiscriminate noise measuring the population imbalance between the two quasi-momentum modes, slows down the loss of single-particle coherence. Decoherence thus either enhances or suppresses phase-diffusion, depending on the details of system-bath coupling and the overlap of decoherence pointer states with collisional-entanglement pointer states. The deceleration of phase-diffusion due to the…
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