English

A Wavelength-Insensitive, Multispecies Entangling Gate for Group-2 Atomic Ions

Quantum Physics 2021-02-26 v1 Atomic Physics

Abstract

We propose an optical scheme for generating entanglement between co-trapped identical or dissimilar alkaline earth atomic ions (40Ca+^{40}\text{Ca}^+, 88Sr+^{88}\text{Sr}^+, 138Ba+^{138}\text{Ba}^+, 226Ra+^{226}\text{Ra}^+) which exhibits fundamental error rates below 10410^{-4} and can be implemented with a broad range of laser wavelengths spanning from ultraviolet to infrared. We also discuss straightforward extensions of this technique to include the two lightest Group-2 ions (Be+\text{Be}^+, Mg+\text{Mg}^+) for multispecies entanglement. The key elements of this wavelength-insensitive geometric phase gate are the use of a ground (S1/2S_{1/2}) and a metastable (D5/2D_{5/2}) electronic state as the qubit levels within a σzσz\sigma^z \sigma^z light-shift entangling gate. We present a detailed analysis of the principles and fundamental error sources for this gate scheme which includes photon scattering and spontaneous emission decoherence, calculating two-qubit-gate error rates and durations at fixed laser beam intensity over a large portion of the optical spectrum (300 nm to 2 μm\mu \text{m}) for an assortment of ion pairs. We contrast the advantages and disadvantages of this technique against previous trapped-ion entangling gates and discuss its applications to quantum information processing and simulation with like and multispecies ion crystals.

Keywords

Cite

@article{arxiv.2010.04526,
  title  = {A Wavelength-Insensitive, Multispecies Entangling Gate for Group-2 Atomic Ions},
  author = {Brian C. Sawyer and Kenton R. Brown},
  journal= {arXiv preprint arXiv:2010.04526},
  year   = {2021}
}

Comments

16 pages, 5 figures

R2 v1 2026-06-23T19:12:23.521Z