Radiofrequency cascade readout of coupled spin qubits
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Peer-reviewed
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Abstract
Silicon spin qubits based on metal–oxide–semiconductor (MOS) technology are compatible with semiconductor manufacturing and offer a route to scalable quantum processing. However, spin readout typically relies on proximal charge sensors, which add architectural complexity and limit qubit connectivity. In situ dispersive readout techniques are more compact, which can alleviate these constrains, but exhibit limited sensitivity. Here we report a radiofrequency electron-cascade readout method that enhances the dispersive signal through alternating-current electron co-tunnelling. With this approach, we achieve an enhancement in signal-to-noise ratio of more than 35 dB, leading to a minimum integration time of 7.6 ± 0.2 µs. We demonstrate singlet-triplet readout of two-electron spins in a natural silicon planar MOS quantum dot array, and coherent spin control using the exchange interaction, which forms the basis for entangling gates. We find dephasing times of up to 500 ns and a gate quality factor that exceeds 10.
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Acknowledgements: We acknowledge helpful conversations with H. Jnane, A. Siegel, S. C. Benjamin, A. J. Fisher and G. Burkard at Quantum Motion. We also acknowledge technical support from G. Antilen Jacob at the London Centre for Nanotechnology. This work received support from the European Union’s Horizon 2020 research and innovation programme (Grant Agreement No. 951852, Quantum Large Scale Integration in Silicon), from the Engineering and Physical Sciences Research Council (Grant Nos. EP/S021582/1, EP/L015978/1, EP/T001062/1 and EP/L015242/1) and from Innovate UK (Grant Nos. 43942 and 10015036). T.M. acknowledges support from the Winton Programme for the Physics of Sustainability. M.F.G.-Z. acknowledges support from the UKRI Future Leaders Fellowship (Grant No. MR/V023284/1).
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2520-1131
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Innovate UK (43942, MR/V023284/1)
EC | Horizon 2020 Framework Programme (EU Framework Programme for Research and Innovation H2020) (951852)

