Enhancing self-discharging process with disordered quantum batteries
arXiv:2112.07317 · doi:10.1103/PhysRevE.105.054115
Abstract
One of the most important devices emerging from quantum technology are quantum batteries. However, self-discharging, the process of charge wasting of quantum batteries due to decoherence phenomenon, limits their performance, measured by the concept of ergotropy and half-life time of the quantum battery. The effects of local field fluctuation, introduced by disorder term in Hamiltonian of the system, on the performance of the quantum batteries is investigated in this paper. The results reveal that the disorder term could compensate disruptive effects of the decoherence, i.e. self-discharging, and hence improve the performance of the quantum battery via "incoherent gain of ergotropy" procedure. Adjusting the strength of disorder parameter to a proper value and choosing a suitable initial state of quantum battery, the amount of free ergotropy, defined with respect to free Hamiltonian, could exceed the amount of initial stored ergotropy. In addition harnessing the degree of disorder parameter could help to enhance the half-life time of the quantum battery. This study opens perspective to further investigation of the performance of quantum batteries that explore disorder and many-body effects.
8 pages and 8 figures + Appendix section
References in corpus (10)
- Quantum Computing
- Finite-Time Disentanglement via Spontaneous Emission
- Observation of Dicke Superradiance for Two Artificial Atoms in a Cavity with High Decay Rate
- Dissipative charging of a quantum battery
- Quantum versus classical many-body batteries
- Stabilizing Open Quantum Batteries by Sequential Measurements
- Dissipative dynamics of an open quantum battery
- Quantum optical diode with semiconductor microcavities
- Quantum spin transistor with a Heisenberg spin chain
- Quantum advantage of two-level batteries in self-discharging process