High-capacity and high-power collective charging with spin chargers
Yong Huangfu, Jun Jing

TL;DR
This paper introduces a spin-charger protocol for quantum batteries that achieves higher energy capacity and better power scaling than traditional cavity-based methods, highlighting the advantages of collective spin interactions.
Contribution
The study proposes a novel spin-charger protocol demonstrating superior energy capacity and power scaling compared to conventional cavity-based quantum charging methods.
Findings
Higher maximum stored energy with isotropic spin interactions.
Trade-off between energy capacity and charging power by tuning charger size.
Quantum advantage shown by power scaling with battery size.
Abstract
Quantum battery works as a micro- or nano-device to store and redistribute energy at the quantum level. Here we propose a spin-charger protocol, in which the battery cells are charged by a finite number of spins through a general Heisenberg XY interaction. Under the isotropic interaction, the spin-charger protocol is endowed with a higher capacity in terms of the maximum stored energy than the conventional protocols, where the battery is charged by a continuous-variable system, e.g., a cavity mode. By tuning the charger size, a trade-off between the maximum stored energy and the average charging power is found in comparison to the cavity-charger protocol in the Tavis-Cummings model. Quantum advantage of our protocol is manifested by the scaling behavior of the optimal average power with respect to the battery size, in comparing the collective charging scheme to its parallel counterpart.…
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