English

Conditional quantum operation of two exchange-coupled single-donor spin qubits in a MOS-compatible silicon device

Mesoscale and Nanoscale Physics 2021-04-07 v2 Quantum Physics

Abstract

Silicon nanoelectronic devices can host single-qubit quantum logic operations with fidelity better than 99.9%. For the spins of an electron bound to a single donor atom, introduced in the silicon by ion implantation, the quantum information can be stored for nearly 1 second. However, manufacturing a scalable quantum processor with this method is considered challenging, because of the exponential sensitivity of the exchange interaction that mediates the coupling between the qubits. Here we demonstrate the conditional, coherent control of an electron spin qubit in an exchange-coupled pair of 31^{31}P donors implanted in silicon. The coupling strength, J=32.06±0.06J = 32.06 \pm 0.06 MHz, is measured spectroscopically with unprecedented precision. Since the coupling is weaker than the electron-nuclear hyperfine coupling A90A \approx 90 MHz which detunes the two electrons, a native two-qubit Controlled-Rotation gate can be obtained via a simple electron spin resonance pulse. This scheme is insensitive to the precise value of JJ, which makes it suitable for the scale-up of donor-based quantum computers in silicon that exploit the Metal-Oxide-Semiconductor fabrication protocols commonly used in the classical electronics industry.

Keywords

Cite

@article{arxiv.2006.04483,
  title  = {Conditional quantum operation of two exchange-coupled single-donor spin qubits in a MOS-compatible silicon device},
  author = {Mateusz T. Mądzik and Arne Laucht and Fay E. Hudson and Alexander M. Jakob and Brett C. Johnson and David N. Jamieson and Kohei M. Itoh and Andrew S. Dzurak and Andrea Morello},
  journal= {arXiv preprint arXiv:2006.04483},
  year   = {2021}
}

Comments

10 pages, 5 figures, plus Supplementary Information. v2 contains additional references, and a simpler explanation of two-qubit CROT gates for donors in silicon

R2 v1 2026-06-23T16:08:27.028Z