Quantum advantage of two-level batteries in self-discharging process
arXiv:2012.11996 · doi:10.1103/PhysRevE.103.042118
Abstract
Devices that use quantum advantages for storing energy in the degree of freedom of quantum systems have drawn attention due to their properties of working as quantum batteries. However, one can identify a number of problems that need to be adequately solved before a real manufacturing process of these devices. In particular, it is important paying attention to the ability of quantum batteries in storing energy when no consumption center is connected to them. In this paper, by considering quantum batteries disconnected from external charging fields and consumption center, we study the decoherence effects that lead to charge leakage to the surrounding environment. We identify this phenomena as a self-discharging of QBs, in analogy to the inherent decay of the stored charge of conventional classical batteries in a open-circuit configuration. The quantum advantage concerning the classical counterpart is highlighted for single- and multi-cell quantum batteries.
5 pages and 5 figures. Comments are welcome
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Cited by in corpus (6)
- Molecular polaritonics: Chemical Dynamics under strong Light-Matter Coupling
- Characterization of a Two-Photon Quantum Battery: Initial Conditions, Stability and Work Extraction
- Optimal charging of open spin-chain quantum batteries via homodyne-based feedback control
- Exergy of passive states: Waste energy after ergotropy extraction
- Fluctuations in Extractable Work and Bounds on the Charging Power of Quantum Batteries
- Enhancing self-discharging process with disordered quantum batteries