English

High fidelity manipulation of a qubit built from a synthetic nucleus

Quantum Physics 2022-03-11 v1 Atomic Physics

Abstract

The recently demonstrated trapping and laser cooling of 133^{133}Ba+^+ has opened the door to the use of this nearly ideal atom for quantum information processing. However, before high fidelity qubit operations can be performed, a number of unknown state energies are needed. Here, we report measurements of the 2^2P3/2_{3/2} and 2^2D5/2_{5/2} hyperfine splittings, as well as the 2^2P3/2_{3/2}\leftrightarrow 2^2S1/2_{1/2}and 2^2P3/2_{3/2} \leftrightarrow 2^2D5/2_{5/2} transition frequencies. Using these transitions, we demonstrate high fidelity 133^{133}Ba+^+ hyperfine qubit manipulation with electron shelving detection to benchmark qubit state preparation and measurement (SPAM). Using single-shot, threshold discrimination, we measure an average SPAM fidelity of F=0.99971(6)\mathcal{F} = 0.99971(6), a factor of \approx 2 improvement over the best reported performance of any qubit.

Keywords

Cite

@article{arxiv.1907.13331,
  title  = {High fidelity manipulation of a qubit built from a synthetic nucleus},
  author = {Justin E. Christensen and David Hucul and Wesley C. Campbell and Eric R. Hudson},
  journal= {arXiv preprint arXiv:1907.13331},
  year   = {2022}
}