English

Improving Dynamical Decoupling for Trapped-Ion QCCD Quantum Computers

Quantum Physics 2026-07-16 v1

Abstract

We examine the impact of scheduling errors on dynamical decoupling (DD) in trapped-ion quantum charge-coupled devices (QCCDs) and develop better strategies for reducing memory errors. In the QCCD architecture, qubit transport and control introduce stochastic pulse delays that impact the efficiency of DD. Using the filter-function formalism, we analyze the performance of DD in the presence of scheduling-induced timing errors, showing that they increase the sensitivity of standard DD to low-frequency fluctuations. For typical memory errors in trapped-ion platforms, we numerically demonstrate that increasing the DD pulse frequency beyond 2 Hz is generally counterproductive due to scheduling-induced timing errors. Furthermore, we introduce a real-time DD protocol that inserts refocusing pulses opportunistically during idle periods. We demonstrate our methods on Quantinuum H2-1 with Ramsey delay-type experiments.

Cite

@article{arxiv.2607.14441,
  title  = {Improving Dynamical Decoupling for Trapped-Ion QCCD Quantum Computers},
  author = {William M. Watkins and Leigh M. Norris and Ross Hutson and Maxwell Urmey and Peter Siegfried and Charles H. Baldwin},
  journal= {arXiv preprint arXiv:2607.14441},
  year   = {2026}
}

Comments

15 pages and 8 figures plus appendices