English

Entanglement and Dynamical Scaling Laws in Quantum Superabsorption

Quantum Physics 2026-03-11 v2

Abstract

Quantum batteries (QBs) exploit collective quantum resources to surpass the limits of classical energy storage and power delivery. We analyze NN-qubit cavity-coupled QBs governed by Dicke and Tavis--Cummings models under Gaussian driving and open-system dynamics. Finite-size scaling laws O(N) ⁣ ⁣Nα\mathcal{O}(N)\!\sim\!N^{\alpha} demonstrate an optimal region of relaxation and dephasing where coherent driving stabilizes entanglement entropy growth for thermodynamic observables (maximum energy EmaxE_{\mathrm{max}}, charging time τ\tau, and maximum power Pˉmax\bar{P}_{\mathrm{max}}) and for qubit and cavity entanglement entropies. The Dicke model exhibits entropy-suppressed extensive behavior, while the Tavis--Cummings model achieves super-extensive scaling with αEmax ⁣ ⁣[1.08,1.26]\alpha_{E_{\mathrm{max}}}\!\in\![1.08,1.26], ατ ⁣ ⁣0.49\alpha_{\tau}\!\approx\!-0.49, αPˉmax ⁣ ⁣[1.57,1.73]\alpha_{\bar{P}_{\mathrm{max}}}\!\in\![1.57,1.73], supported by qubit-cavity entanglement. We demonstrate that dissipation can act as a stabilizer source, yielding scaling benchmarks that are relevant to several experimental platforms. Our findings connect entanglement, dissipation-enhanced scaling laws and superabsorption, outlining a pathway towards scalable quantum batteries offering practical quantum advantage.

Keywords

Cite

@article{arxiv.2510.26373,
  title  = {Entanglement and Dynamical Scaling Laws in Quantum Superabsorption},
  author = {Juan David Álvarez-Cuartas and John H. Reina},
  journal= {arXiv preprint arXiv:2510.26373},
  year   = {2026}
}
R2 v1 2026-07-01T07:13:37.714Z