An imbalance-only formulation with position-dependent mass yields quantum-corrected Josephson frequency that matches exact diagonalization better than phase-only methods in weak interactions.
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3 Pith papers cite this work. Polarity classification is still indexing.
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cond-mat.quant-gas 3years
2026 3verdicts
UNVERDICTED 3representative citing papers
Pair tunneling from dipolar interactions in a double-well Bose-Hubbard model induces ground-state parity modulations, qualitatively alters quantum phase transitions to NOON states, shifts critical points, and modifies macroscopic quantum self-trapping conditions.
Quantum corrections to dissipative semiclassical dynamics are set by zero-point energy of fluctuations evaluated at the classical underdamped frequency in the low-temperature weak-damping regime.
citing papers explorer
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Quantum corrections to the Josephson dynamics: a population-imbalance approach
An imbalance-only formulation with position-dependent mass yields quantum-corrected Josephson frequency that matches exact diagonalization better than phase-only methods in weak interactions.
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Equilibrium and dynamical quantum phase transitions in dipolar atomic Josephson junctions
Pair tunneling from dipolar interactions in a double-well Bose-Hubbard model induces ground-state parity modulations, qualitatively alters quantum phase transitions to NOON states, shifts critical points, and modifies macroscopic quantum self-trapping conditions.
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Quantum effective action for dissipative semiclassical dynamics
Quantum corrections to dissipative semiclassical dynamics are set by zero-point energy of fluctuations evaluated at the classical underdamped frequency in the low-temperature weak-damping regime.