English

Single-spin qubits in isotopically enriched silicon at low magnetic field

Mesoscale and Nanoscale Physics 2019-12-05 v5

Abstract

Single-electron spin qubits employ magnetic fields on the order of 1 Tesla or above to enable quantum state readout via spin-dependent-tunnelling. This requires demanding microwave engineering for coherent spin resonance control and significant on-chip real estate for electron reservoirs, both of which limit the prospects for large scale multi-qubit systems. Alternatively, singlet-triplet (ST) readout enables high-fidelity spin-state measurements in much lower magnetic fields, without the need for reservoirs. Here, we demonstrate low-field operation of metal-oxide-silicon (MOS) quantum dot qubits by combining coherent single-spin control with high-fidelity, single-shot, Pauli-spin-blockade-based ST readout. We discover that the qubits decohere faster at low magnetic fields with T2Rabi=18.6T_{2}^{Rabi}=18.6~μ\mus and T2=1.4T_2^*=1.4~μ\mus at 150~mT. Their coherence is limited by spin flips of residual 29^{29}Si nuclei in the isotopically enriched 28^{28}Si host material, which occur more frequently at lower fields. Our finding indicates that new trade-offs will be required to ensure the frequency stabilization of spin qubits and highlights the importance of isotopic enrichment of device substrates for the realization of a scalable silicon-based quantum processor.

Keywords

Cite

@article{arxiv.1812.08347,
  title  = {Single-spin qubits in isotopically enriched silicon at low magnetic field},
  author = {R. Zhao and T. Tanttu and K. Y. Tan and B. Hensen and K. W. Chan and J. C. C. Hwang and R. C. C. Leon and C. H. Yang and W. Gilbert and F. E. Hudson and K. M. Itoh and A. A. Kiselev and T. D. Ladd and A. Morello and A. Laucht and A. S. Dzurak},
  journal= {arXiv preprint arXiv:1812.08347},
  year   = {2019}
}
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