We present a microscopic derivation of a master equation for two-component bosons (bosonic qubits) which tunnel between spatially separated modes under local dephasing noise. Starting from the full system-bath Hamiltonian with Lorentzian coupling distributions, we analytically obtain a time-local master equation whose structure reveals intrinsic non-Markovian features and recovers the standard phenomenological dephasing model in the short-time limit. Comparison with exact pseudomode simulations confirms its validity beyond weakcoupling and Markovian regimes. We identify a resonance condition between tunneling and bath frequencies for which dephasing drives the system toward correlated steady states, stabilizing coherence and entanglement instead of suppressing them. These results establish a rigorous microscopic foundation for dephasing models in bosonic tunneling systems and reveal a noise-induced mechanism for steady-state entanglement.

Ferrara, A., Nosrati, F., Smirne, A., Piilo, J., Lo Franco, R. (2026). Tunneling of bosonic qubits under local dephasing through a microscopic approach. PHYSICAL REVIEW A, 114(1), 1-19 [10.1103/f2sy-sj27].

Tunneling of bosonic qubits under local dephasing through a microscopic approach

Ferrara, Alberto
Primo
Formal Analysis
;
Nosrati, Farzam
Methodology
;
Lo Franco, Rosario
Ultimo
Supervision
2026-07-06

Abstract

We present a microscopic derivation of a master equation for two-component bosons (bosonic qubits) which tunnel between spatially separated modes under local dephasing noise. Starting from the full system-bath Hamiltonian with Lorentzian coupling distributions, we analytically obtain a time-local master equation whose structure reveals intrinsic non-Markovian features and recovers the standard phenomenological dephasing model in the short-time limit. Comparison with exact pseudomode simulations confirms its validity beyond weakcoupling and Markovian regimes. We identify a resonance condition between tunneling and bath frequencies for which dephasing drives the system toward correlated steady states, stabilizing coherence and entanglement instead of suppressing them. These results establish a rigorous microscopic foundation for dephasing models in bosonic tunneling systems and reveal a noise-induced mechanism for steady-state entanglement.
6-lug-2026
Ferrara, A., Nosrati, F., Smirne, A., Piilo, J., Lo Franco, R. (2026). Tunneling of bosonic qubits under local dephasing through a microscopic approach. PHYSICAL REVIEW A, 114(1), 1-19 [10.1103/f2sy-sj27].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10447/714231
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