Charging a quantum battery in a non-Markovian environment: a collisional model approach
arXiv:2212.13488 · doi:10.1088/2058-9565/accca4
Abstract
We study the effect of non-Markovianity in the charging process of an open-system quantum battery. We employ a collisional model framework, where the environment is described by a discrete set of ancillary systems and memory effects in the dynamics can be introduced by allowing these ancillas to interact. We study in detail the behaviour of the steady-state ergotropy and the impact of the information backflow to the system on the different features characterizing the charging process. Remarkably, we find that there is a maximum value of the ergotropy achievable: this value can be obtained either in the presence of memoryless environment, but only in the large-loss limit, as derived in [D. Farina et al., Phys. Rev. B 99, 035421 (2019)], or in the presence of an environment with memory also beyond the large-loss limit. In general, we show that the presence of an environment with memory allows us to generate steady-state ergotropy near to its maximum value for a much larger region in the parameter space and thus potentially in a shorter time. Relying on the geometrical measure of non-Markovianity, we show that in both the cases of an environment with and without memory the ergotropy maximum is obtained when the non-Markovianity of the dynamics of the battery is zero, possibly as the result of a non-trivial interplay between the memory effects induced by, respectively, the environment and the charger connected to the battery.
11 pages, 9 figures
References in corpus (8)
- Quantum Non-Markovianity: Characterization, Quantification and Detection
- Collision-model-based approach to non-Markovian quantum dynamics
- Stabilizing Open Quantum Batteries by Sequential Measurements
- Dissipative dynamics of an open quantum battery
- Collective effects and quantum coherence in dissipative charging of quantum batteries
- Optimal charging of open spin-chain quantum batteries via homodyne-based feedback control
- A brief journey through collision models for multipartite open quantum dynamics
- Efficiency fluctuations in a quantum battery charged by a repeated interaction process
Cited by in corpus (27)
- Colloquium: Quantum Batteries
- Frustrating quantum batteries
- Artificial intelligence discovery of a charging protocol in a micromaser quantum battery
- Work extraction processes from noisy quantum batteries: the role of non local resources
- Daemonic ergotropy in continuously-monitored open quantum batteries
- Cyclic solid-state quantum battery: Thermodynamic characterization and quantum hardware simulation
- Dynamical blockade of a reservoir for optimal performances of a quantum battery
- Quantum work extraction efficiency for noisy quantum batteries: the role of coherence
- Quantum Work Capacitances: ultimate limits for energy extraction on noisy quantum batteries
- Quantum battery based on dipole-dipole interaction and external driving field
- Super-Optimal Charging of Quantum Batteries via Reservoir Engineering
- Minimal time required to charge a quantum system
- Experimental simulation of daemonic work extraction in open quantum batteries on a digital quantum computer
- Reservoir-assisted quantum battery charging at finite temperatures
- Two-photon charging of a quantum battery with a Gaussian pulse envelope
- Daemonic quantum battery charged by thermalization
- Collisional charging of a transmon quantum battery
- Quantum recharging by shortcut to adiabaticity
- Auxiliary-assisted energy distillation from quantum batteries
- Non-positive energy quasidistributions in coherent collision models
- Harnessing Nth Root Gates for Energy Storage
- Daemonic ergotropy of Gaussian quantum states and the role of measurement-induced purification via general-dyne detection
- The evolution of quantum battery capacity of GHZ-like states under Markovian channels
- Universal features of non-analytical energy storage in quantum critical quantum batteries
- Dual effects of Lamb Shift in Quantum Thermodynamical Systems
- Collective Quantum Batteries and Charger-Battery Setup in Open Quantum Systems: Impact of Inter-Qubit Interactions, Dissipation, and Quantum Criticality
- Boosting Work Extraction in Quantum Batteries via Continuous Environment Monitoring