English

On-demand electrical control of spin qubits

Mesoscale and Nanoscale Physics 2023-01-18 v2 Quantum Physics

Abstract

Once called a "classically non-describable two-valuedness" by Pauli , the electron spin is a natural resource for long-lived quantum information since it is mostly impervious to electric fluctuations and can be replicated in large arrays using silicon quantum dots, which offer high-fidelity control. Paradoxically, one of the most convenient control strategies is the integration of nanoscale magnets to artificially enhance the coupling between spins and electric field, which in turn hampers the spin's noise immunity and adds architectural complexity. Here we demonstrate a technique that enables a \emph{switchable} interaction between spins and orbital motion of electrons in silicon quantum dots, without the presence of a micromagnet. The naturally weak effects of the relativistic spin-orbit interaction in silicon are enhanced by more than three orders of magnitude by controlling the energy quantisation of electrons in the nanostructure, enhancing the orbital motion. Fast electrical control is demonstrated in multiple devices and electronic configurations, highlighting the utility of the technique. Using the electrical drive we achieve coherence time T2,Hahn50μT_{2,{\rm Hahn}}\approx50 \mus, fast single-qubit gates with Tπ/2=3{T_{\pi/2}=3} ns and gate fidelities of 99.93 % probed by randomised benchmarking. The higher gate speeds and better compatibility with CMOS manufacturing enabled by on-demand electric control improve the prospects for realising scalable silicon quantum processors.

Keywords

Cite

@article{arxiv.2201.06679,
  title  = {On-demand electrical control of spin qubits},
  author = {Will Gilbert and Tuomo Tanttu and Wee Han Lim and MengKe Feng and Jonathan Y. Huang and Jesus D. Cifuentes and Santiago Serrano and Philip Y. Mai and Ross C. C. Leon and Christopher C. Escott and Kohei M. Itoh and Nikolay V. Abrosimov and Hans-Joachim Pohl and Michael L. W. Thewalt and Fay E. Hudson and Andrea Morello and Arne Laucht and Chih Hwan Yang and Andre Saraiva and Andrew S. Dzurak},
  journal= {arXiv preprint arXiv:2201.06679},
  year   = {2023}
}
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