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Autori principali: Weng, Hao-Cheng, Rarity, John G., Balram, Krishna C., Smith, Joe A.
Natura: Preprint
Pubblicazione: 2024
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Accesso online:https://arxiv.org/abs/2404.04075
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author Weng, Hao-Cheng
Rarity, John G.
Balram, Krishna C.
Smith, Joe A.
author_facet Weng, Hao-Cheng
Rarity, John G.
Balram, Krishna C.
Smith, Joe A.
contents To exploit the sub-nanometre dimensions of qubits for large-scale quantum information processing, corresponding control architectures require both energy and space efficiency, with the on-chip footprint of unit-cell electronics ideally micron-scale. However, the spin coherence of qubits in close packing is severely deteriorated by microwave crosstalk from neighbouring control sites. Here, we present a crosstalk-mitigation scheme using foundry microelectronics, to address solid-state spins at sub-100 $μ$m spacing without the need for qubit-detuning. Using nitrogen-vacancy centres in nanodiamonds as qubit prototypes, we first demonstrate 10 MHz Rabi oscillation at milliwatts of microwave power. Implementing the active cancellation, we then prove that the crosstalk field from neighbouring lattice sites can be reduced to undetectable levels. We finally extend the scheme to show increased qubit control, or effectively, the spin coherence under crosstalk mitigation. Compatible with integrated optics, our results present a step towards scalable control across quantum platforms using silicon microelectronics.
format Preprint
id arxiv_https___arxiv_org_abs_2404_04075
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Crosstalk-mitigated microelectronic control for optically-active spins
Weng, Hao-Cheng
Rarity, John G.
Balram, Krishna C.
Smith, Joe A.
Quantum Physics
Applied Physics
To exploit the sub-nanometre dimensions of qubits for large-scale quantum information processing, corresponding control architectures require both energy and space efficiency, with the on-chip footprint of unit-cell electronics ideally micron-scale. However, the spin coherence of qubits in close packing is severely deteriorated by microwave crosstalk from neighbouring control sites. Here, we present a crosstalk-mitigation scheme using foundry microelectronics, to address solid-state spins at sub-100 $μ$m spacing without the need for qubit-detuning. Using nitrogen-vacancy centres in nanodiamonds as qubit prototypes, we first demonstrate 10 MHz Rabi oscillation at milliwatts of microwave power. Implementing the active cancellation, we then prove that the crosstalk field from neighbouring lattice sites can be reduced to undetectable levels. We finally extend the scheme to show increased qubit control, or effectively, the spin coherence under crosstalk mitigation. Compatible with integrated optics, our results present a step towards scalable control across quantum platforms using silicon microelectronics.
title Crosstalk-mitigated microelectronic control for optically-active spins
topic Quantum Physics
Applied Physics
url https://arxiv.org/abs/2404.04075