Optimal passive detuning of an intermediate cavity protects ergotropy in open collective quantum batteries by suppressing environmental memory effects, yielding up to 1088% improvement for single qubits and superextensive collective gains for N greater than or equal to 3.
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Protocols for generating quantum resources can simultaneously charge quantum batteries with a collective advantage, enabling dual-use superconducting hardware for sensing or energy storage.
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Ergotropy Protection via Cavity Detuning in Collective Open Quantum Batteries
Optimal passive detuning of an intermediate cavity protects ergotropy in open collective quantum batteries by suppressing environmental memory effects, yielding up to 1088% improvement for single qubits and superextensive collective gains for N greater than or equal to 3.
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Dual-use quantum hardware for quantum resource generation and energy storage
Protocols for generating quantum resources can simultaneously charge quantum batteries with a collective advantage, enabling dual-use superconducting hardware for sensing or energy storage.