English

Bounds to electron spin qubit variability for scalable CMOS architectures

Quantum Physics 2024-07-08 v3 Mesoscale and Nanoscale Physics Materials Science

Abstract

Spins of electrons in CMOS quantum dots combine exquisite quantum properties and scalable fabrication. In the age of quantum technology, however, the metrics that crowned Si/SiO2 as the microelectronics standard need to be reassessed with respect to their impact upon qubit performance. We chart the spin qubit variability due to the unavoidable atomic-scale roughness of the Si/SiO2_2 interface, compiling experiments in 12 devices, and developing theoretical tools to analyse these results. Atomistic tight binding and path integral Monte Carlo methods are adapted for describing fluctuations in devices with millions of atoms by directly analysing their wavefunctions and electron paths instead of their energy spectra. We correlate the effect of roughness with the variability in qubit position, deformation, valley splitting, valley phase, spin-orbit coupling and exchange coupling. These variabilities are found to be bounded and lie within the tolerances for scalable architectures for quantum computing as long as robust control methods are incorporated.

Keywords

Cite

@article{arxiv.2303.14864,
  title  = {Bounds to electron spin qubit variability for scalable CMOS architectures},
  author = {Jesús D. Cifuentes and Tuomo Tanttu and Will Gilbert and Jonathan Y. Huang and Ensar Vahapoglu and Ross C. C. Leon and Santiago Serrano and Dennis Otter and Daniel Dunmore and Philip Y. Mai and Frédéric Schlattner and MengKe Feng and Kohei Itoh and Nikolay Abrosimov and Hans-Joachim Pohl and Michael Thewalt and Arne Laucht and Chih Hwan Yang and Christopher C. Escott and Wee Han Lim and Fay E. Hudson and Rajib Rahman and Andrew S. Dzurak and Andre Saraiva},
  journal= {arXiv preprint arXiv:2303.14864},
  year   = {2024}
}

Comments

20 pages, 8 figures

R2 v1 2026-06-28T09:34:35.406Z