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Sensitivity Optimization for NV-Diamond Magnetometry
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Solid-state spin systems including nitrogen-vacancy (NV) centers in diamond constitute an increasingly favored quantum sensing platform. However, present NV ensemble devices exhibit sensitivities orders of magnitude away from theoretical limits. The sensitivity shortfall both handicaps existing implementations and curtails the envisioned application space. This review analyzes present and proposed approaches to enhance the sensitivity of broadband ensemble-NV-diamond magnetometers. Improvements to the spin dephasing time, the readout fidelity, and the host diamond material properties are identified as the most promising avenues and are investigated extensively. Our analysis of sensitivity optimization establishes a foundation to stimulate development of new techniques for enhancing solid-state sensor performance.
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Designing quantum technologies with a quantum computer
A hybrid quantum–classical framework using sQKFF plus Gray encoding and qubit-wise commuting aggregation simulates NV-center spin-defect dynamics and spectra with 18–30% gate-count reductions.
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