Parallel entangling gates in trapped-ion chains using orthogonal motional modes
ORAL
Abstract
Parallel operations are important for both near-term quantum computers and larger-scale fault-tolerant machines because they reduce execution time and qubit idling. We present a pairwise-parallel gate scheme on a trapped-ion quantum computer where entangling gates are driven simultaneously on different sets of orthogonal motional modes in a trapped-ion chain. We demonstrate the utility of this scheme by creating a high-fidelity GHZ state in one step using parallel gates with one overlapping qubit and show its advantage for long circuits by running a digital quantum simulation of a transverse-field Ising model. With essentially no overhead apart from additional initial cooling, this method effectively extends the available gate depth by up to a factor of two. We use ground-level qubits in 171 Yb+ driven by Raman lasers in this demonstration, but this scheme can be easily applied to other types of trapped-ion qubits and addressed gate schemes, broadly enhancing the capabilities of trapped-ion quantum computers.
*We acknowledge support from the U.S. Department of Energy, Office of Science, National Quantum Information Science Research Centers, Quantum Systems Accelerator, the Office of Naval Research (N00014-20-1-2695), and the National Science Foundation (QLCI grant OMA-2120757).
–
Publication: Yingyue Zhu et al., "Parallel entangling gates in trapped-ion chains using orthogonal motional modes" (manuscript in preparation)
Presenters
-
Yingyue Zhu
- Joint Quantum Institute / University of Maryland, College Park