quantum physics

Quantum coherence and entanglement in wireless quantum batteries

arXiv:2607.27718

summary

The paper studies how a wireless quantum battery charged through a common structured bosonic environment behaves, focusing on how quantum coherence, entanglement, non‑Markovian memory, and coupling symmetry affect energy transfer and work extraction.

Abstract

We investigate the charging dynamics and thermodynamic performance of a wireless quantum battery system mediated by a common structured bosonic environment. By employing a unified resource-theoretic analysis, we elucidate the distinct roles of non-Markovian memory effects and coupling symmetry in regulating energy transfer. In the Markovian weak-coupling regime, we identify a transformative mechanism where the dynamic reconstruction of -norm coherence compensates for the monotonic decay of first-order coherence to sustain energy transport. Conversely, the non-Markovian strong-coupling regime facilitates a cooperative resonance, characterized by the synchronized oscillation of entanglement and stored energy induced by environmental backflow. Furthermore, we reveal that coupling symmetry acts as a critical control parameter: while asymmetric coupling favoring the battery optimizes energy gain in memoryless environments, symmetric coupling under strong interactions unlocks a dark-state protection mechanism, effectively trapping energy within a decoherence-free subspace. Finally, a thermodynamic analysis based on ergotropy demonstrates that first-order coherence establishes the activation threshold for incoherent work, whereas -norm coherence serves as the explicit fuel for coherent work extraction. These findings provide a refined theoretical framework for engineering environment-assisted quantum energy storage devices.

12 pages, 11 figures, comments are welcome. Accepted by Physical Review A

Topics & keywords

#quantum batteries#quantum coherence#entanglement#non-markovian dynamics#open quantum systems#quantum thermodynamicsl1-norm coherenceergotropystructured bosonic environmentstrong couplingdark-state protectiondecoherence-free subspace