English

Implementation of the SMART protocol for global qubit control in silicon

Mesoscale and Nanoscale Physics 2022-09-29 v3 Quantum Physics

Abstract

Quantum computing based on spins in the solid state allows for densely-packed arrays of quantum bits. While high-fidelity operation of single qubits has been demonstrated with individual control pulses, the operation of large-scale quantum processors requires a shift in paradigm towards global control solutions. Here we report the experimental implementation of a new type of qubit protocol - the SMART (Sinusoidally Modulated, Always Rotating and Tailored) protocol. As with a dressed qubit, we resonantly drive a two-level system with a continuous microwave field, but here we add a tailored modulation to the dressing field to achieve increased robustness to detuning noise and microwave amplitude fluctuations. We implement this new protocol to control a single spin confined in a silicon quantum dot and confirm the optimal modulation conditions predicted from theory. Universal control of a single qubit is demonstrated using modulated Stark shift control via the local gate electrodes. We measure an extended coherence time of 22 ms and an average Clifford gate fidelity >99>99 %\% despite the relatively long qubit gate times (>15>15 \unicode[serif]x03BC\unicode[serif]{x03BC}s, 2020 times longer than a conventional square pulse gate), constituting a significant improvement over a conventional spin qubit and a dressed qubit. This work shows that future scalable spin qubit arrays could be operated using global microwave control and local gate addressability, while maintaining robustness to relevant experimental inhomogeneities.

Keywords

Cite

@article{arxiv.2108.00836,
  title  = {Implementation of the SMART protocol for global qubit control in silicon},
  author = {Ingvild Hansen and Amanda E. Seedhouse and Kok Wai Chan and Fay Hudson and Kohei M. Itoh and Arne Laucht and Andre Saraiva and Chih Hwan Yang and Andrew S. Dzurak},
  journal= {arXiv preprint arXiv:2108.00836},
  year   = {2022}
}
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