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Quantum Chemistry
Collective Enhancement of Nuclear Excitation for a Nuclear Quantum Battery
arXiv
Authors: Pravin Kumar Dahal, Kieran Hymas, Jack Muir, James Q. Quach
Year
2026
Paper ID
73568
Status
Preprint
Abstract Read
~2 min
Abstract Words
154
Citations
N/A
Abstract
Current implementations of quantum batteries are constrained by limited energy density and short retention times associated with the electronic or molecular excitations. Here we propose a nuclear quantum battery based on collective excitation of the 57Fe nuclei of density n embedded in a planar hard X-ray waveguide. Using a Green function waveguide-QED description, we study charging via excitation beyond linear response, where saturation and drive back-action reshape the incident pulse. We introduce a self-consistent waveform-engineering protocol that inhibits local radiative decay in the waveguide thus promoting absorption into high-lying collective nuclear excitation manifolds. We show an enhanced excitation cross section of the nuclear ensemble which yields superlinear charging, with maximum studied energy density scaling approximately like n sqrt{n}. Our results provide a route to high-energy-density quantum charging at hard X-ray energies using contemporary X-ray sources and waveguide architectures by identifying nonlinear, collectively enhanced absorption as a key mechanism for nuclear quantum battery operation.
Why This Paper Matters
- This paper contributes to the Quantum Chemistry research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- Current implementations of quantum batteries are constrained by limited energy density and short retention times associated with the electronic or molecular excitations.
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