Charging a quantum battery from the Bloch sphere
arXiv:2601.10844 · doi:10.1002/andp.202500638
Abstract
We reconsider the quantum energetics and quantum thermodynamics of the charging process of a simple, two-component quantum battery model made up of a charger qubit and a single--cell battery qubit. We allow for the initial quantum state of the charger to lie anywhere on the surface of the Bloch sphere, and find the generalized analytical expressions describing the stored energy, ergotropy and capacity of the battery, all of which depend upon the initial Bloch sphere polar angle in a manner evocative of the quantum area theorem. The origin of the ergotropy produced, as well as the genesis of the battery capacity, can be readily traced back to the quantum coherences and population inversions generated (and the balance between these two mechanisms is contingent upon the starting Bloch polar angle). Importantly, the ergotropic charging power and its associated optimal charging time display notable deviations from standard results which disregard thermodynamic considerations. Our theoretical groundwork may be useful for guiding forthcoming experiments in quantum energy science based upon coupled two-level systems.
11 pages, 4 figures
References in corpus (16)
- Entanglement of Formation of an Arbitrary State of Two Qubits
- A short introduction to the Lindblad Master Equation
- Extractable work from ensembles of quantum batteries. Entanglement helps
- Charger-mediated energy transfer for quantum batteries: an open system approach
- Superabsorption in an organic microcavity: towards a quantum battery
- Colloquium: Quantum Batteries
- Charger-mediated energy transfer in exactly-solvable models for quantum batteries
- NMR investigations of quantum battery using star-topology spin systems
- The battery capacity of energy-storing quantum systems
- Collective enhancement in dissipative quantum batteries
- Catalysis in Charging Quantum Batteries
- Hyperbolic enhancement of a quantum battery
- Quantum Batteries: A Materials Science Perspective
- Super-Optimal Charging of Quantum Batteries via Reservoir Engineering
- Two-photon charging of a quantum battery with a Gaussian pulse envelope
- Enhancing the Charging Performance of Many-Body Quantum Batteries through Landau-Zener Driving