Impact of electrostatic crosstalk on spin qubits in dense CMOS quantum dot arrays
Abstract
Quantum processors based on integrated nanoscale silicon spin qubits are a promising platform for highly scalable quantum computation. Current CMOS spin qubit processors consist of dense gate arrays to define the quantum dots, making them susceptible to crosstalk from capacitive coupling between a dot and its neighbouring gates. Small but sizeable spin-orbit interactions can transfer this electrostatic crosstalk to the spin g-factors, creating a dependence of the Larmor frequency on the electric field created by gate electrodes positioned even tens of nanometers apart. By studying the Stark shift from tens of spin qubits measured in nine different CMOS devices, we developed a theoretical frawework that explains how electric fields couple to the spin of the electrons in increasingly complex arrays, including those electric fluctuations that limit qubit dephasing times . The results will aid in the design of robust strategies to scale CMOS quantum technology.
Keywords
Cite
@article{arxiv.2309.01849,
title = {Impact of electrostatic crosstalk on spin qubits in dense CMOS quantum dot arrays},
author = {Jesus D. Cifuentes and Tuomo Tanttu and Paul Steinacker and Santiago Serrano and Ingvild Hansen and James P. Slack-Smith and Will Gilbert and Jonathan Y. Huang and Ensar Vahapoglu and Ross C. C. Leon and Nard Dumoulin Stuyck 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 Fay E. Hudson and Wee Han Lim and Rajib Rahman and Andrew S. Dzurak and Andre Saraiva},
journal= {arXiv preprint arXiv:2309.01849},
year = {2024}
}
Comments
9 pages, 4 figures