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Energy efficient coherent quantum control of nitrogen vacancy (NV) spin with nanoscale magnets

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arxiv 2407.14018 v1 pith:7XNSSPXY submitted 2024-07-19 cond-mat.mes-hall quant-ph

Energy efficient coherent quantum control of nitrogen vacancy (NV) spin with nanoscale magnets

classification cond-mat.mes-hall quant-ph
keywords controlcoherentquantumefficientenergymicrowavenanomagnetsnanoscale
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We investigate coherent quantum control of a nitrogen vacancy (NV) center in diamond with microwave fields generated from a nanoscale magnet that is proximal to the NV center. Our results show remarkable coherent control with high contrast Rabi oscillations using nearfield microwaves from shape anisotropic nanomagnets of lateral dimensions down to 200 nm x 180 nm, driven remotely by surface acoustic wave (SAW) excitation that is at least 400 times and potentially 4 orders of magnitude more energy efficient than generating microwaves with an antenna. Furthermore, we show that varying the acoustic power driving such nanomagnets can achieve control over Rabi frequency. We also report spin-lattice relaxation time T1 is 103 +/-0.5 micro-seconds, the spin-spin relaxation time T2 is 1.23+/-0.29 micro-seconds, and the Ramsey coherence time T2* is 218+/-27 nanoseconds measured using microwave pulses generated by such nanomagnets. The use of the nanoscale magnets to implement highly localized and energy efficient coherent quantum control can replace thermally noisy microwave circuits and demonstrate a path to scalable quantum computing and sensing with NV-defects in diamond and other spin qubits.

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  1. Designing quantum technologies with a quantum computer

    quant-ph 2026-01 conditional novelty 5.0

    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.