English

Integrated silicon qubit platform with single-spin addressability, exchange control and robust single-shot singlet-triplet readout

Quantum Physics 2018-11-01 v2

Abstract

Silicon quantum dot spin qubits provide a promising platform for large-scale quantum computation because of their compatibility with conventional CMOS manufacturing and the long coherence times accessible using 28^{28}Si enriched material. A scalable error-corrected quantum processor, however, will require control of many qubits in parallel, while performing error detection across the constituent qubits. Spin resonance techniques are a convenient path to parallel two-axis control, while Pauli spin blockade can be used to realize local parity measurements for error detection. Despite this, silicon qubit implementations have so far focused on either single-spin resonance control, or control and measurement via voltage-pulse detuning in the two-spin singlet-triplet basis, but not both simultaneously. Here, we demonstrate an integrated device platform incorporating a silicon metal-oxide-semiconductor double quantum dot that is capable of single-spin addressing and control via electron spin resonance, combined with high-fidelity spin readout in the singlet-triplet basis.

Keywords

Cite

@article{arxiv.1708.03445,
  title  = {Integrated silicon qubit platform with single-spin addressability, exchange control and robust single-shot singlet-triplet readout},
  author = {M. A. Fogarty and K. W. Chan and B. Hensen and W. Huang and T. Tanttu and C. H. Yang and A. Laucht and M. Veldhorst and F. E. Hudson and K. M. Itoh and D. Culcer and A. Morello and A. S. Dzurak},
  journal= {arXiv preprint arXiv:1708.03445},
  year   = {2018}
}

Comments

10 pages, 4 figures