Quantum battery in the Heisenberg spin chain models with Dzyaloshinskii-Moriya interaction
arXiv:2406.16047 · doi:10.1002/qute.202400114
Abstract
Quantum battery (QB) is an energy storage and extraction device conforming to the principles of quantum mechanics. In this study, we consider the characteristics of QBs for the Heisenberg spin chain models in the absence and presence of Dzyaloshinskii-Moriya (DM) interaction. Our results show that the DM interaction can enhance the ergotropy and power of QBs, which shows the collective charging can outperform parallel charging regarding QB's performance. Besides, it turns out that first-order coherence is a crucial quantum resource during charging, while quantum steering between the cells is not conducive to the energy storage of QBs. Our investigations offer insight into the properties of QBs with Heisenberg spin chain models with DM interaction and facilitate us to acquire the performance in the framework of realistic quantum batteries.
6 pages, 7 figures, comments are welcomed. Accepted by Advanced Quantum Technologies
References in corpus (13)
- Steering, Entanglement, Nonlocality, and the EPR Paradox
- Experimental criteria for steering and the Einstein-Podolsky-Rosen paradox
- Dissipative charging of a quantum battery
- Quantum versus classical many-body batteries
- Stabilizing Open Quantum Batteries by Sequential Measurements
- Quantum thermodynamics of general quantum processes
- Quantum advantage of two-level batteries in self-discharging process
- Environment-mediated entropic uncertainty in charging quantum batteries
- Vacuum enhanced charging of a quantum battery
- Evaluating extractable work of quantum batteries via entropic uncertainty relations
- Steering the potential barriers: entropic to energetic
- Scaling of energy and power in a large quantum battery-charger model
- Quantum battery based on dipole-dipole interaction and external driving field