Charging of a Quantum Battery by a Two-Photon Quantum Pulse
Elnaz Darsheshdar, Seyed Mostafa Moniri, Mikayel Khanbekyan
Abstract
We investigate the charging of a harmonic-oscillator quantum battery by a propagating two-photon quantum pulse coupled through a two-level-system charger. Excitation-number conservation reduces the dynamics to a sequential response of the first and second excitation sectors, whose effective non-Hermitian generators exhibit two exceptional points separating overdamped, mixed, and underdamped regimes. We derive the exact full-charging amplitude and the response-matched two-photon temporal mode that achieves perfect charging in the ideal resonant single-channel model. For experimentally accessible Gaussian pulses, moderate temporal anticorrelation or a finite photon delay can enhance charging, whereas positive correlations generally suppress it. States with equal Schmidt number can nevertheless show different charging efficiencies, demonstrating that temporal-mode structure and response matching, rather than nonseparability alone, determine charging performance.
Create a lesson
Related papers
Continuous variable distributed quantum sensing in integrated photonics
Bethany Puzio, Oliver M. Green, Joel F. Tasker et al.
Securing quantum error correction against misleading advice from AI agents
A. Barış Özgüler
Exact logical error rates for magic state cultivation
Kwok Ho Wan, Ainhoa Zapirain
Hamiltonian engineering via pulses: beyond group averaging
Ivan Beschastnyi, Lucah Patel, David Tinoco
Logarithmic-depth quantum simulation of boson sampling
Changhun Oh
Entanglement swapping across a five-node relay in a multiplexed quantum-classical network
Andrew R. Cameron, Jordan M. Thomas, Alexandru Macridin et al.