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Open Quantum Systems Decoherence Quantum Simulation

Dissipation-Selected Resonant Fronts in a Driven-Dissipative Bose-Hubbard Lattice

arXiv
Authors: Wei-Guo Ma, Heng Fan

Year

2026

Paper ID

63702

Status

Preprint

Abstract Read

~2 min

Abstract Words

135

Citations

0

Abstract

Spatially structured dissipation organizes driven quantum matter beyond Hamiltonian control. We show that a dissipation gradient combined with a Stark-induced detuning ramp selects a nonlinear resonance slice in a two-dimensional driven-dissipative Bose-Hubbard lattice, producing a pinned density front in generalized Gross-Pitaevskii simulations. The underlying resonance condition fixes the front position, while its Airy-like profile obeys a width scaling set by tunneling stiffness and the effective detuning slope. Treating the front as an emergent interface explains how tuning the selected resonance toward the minimum-loss side yields Peierls-Nabarro depinning steps, discrete transverse pattern locking, spatiotemporal chaos, and minimum-loss localization. Center-of-mass and generalized-imbalance diagnostics map these outcomes into a dynamical phase diagram as detuning-ramp slope and dissipation-gradient strength vary. The results suggest structured dissipation as a mechanism for reconfigurable transport barriers and nonequilibrium interfaces in programmable bosonic lattices.

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  • This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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  • Spatially structured dissipation organizes driven quantum matter beyond Hamiltonian control.

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