Robust Two-Qubit Geometric Phase Gates using Amplitude and Frequency Ramping

Fuente: arXiv
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Main Authors: Bowers, Christina, Palani, Deviprasath, Barta, John, Guglielmo, Tyler, Libby, Stephen, Leibfried, Dietrich, Slichter, Daniel
Format: Preprint
Published: 2025
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author Bowers, Christina
Palani, Deviprasath
Barta, John
Guglielmo, Tyler
Libby, Stephen
Leibfried, Dietrich
Slichter, Daniel
author_facet Bowers, Christina
Palani, Deviprasath
Barta, John
Guglielmo, Tyler
Libby, Stephen
Leibfried, Dietrich
Slichter, Daniel
contents We demonstrate a method for generating entanglement between trapped atomic ions based on adiabatically ramped state-dependent forces. By ramping both the amplitude of the state-dependent force and the motional mode frequencies, we realize an entangling operation that is robust to motional mode occupation and drifts in the mode frequencies. We measure Bell state fidelities above 0.99 across a broad range of ramp parameters and with motional occupations up to 10 phonons. This technique enables high-fidelity entangling operations without ground-state cooling, has a reduced calibration overhead, and is well suited for both quantum logic spectroscopy applications and scalable quantum computing architectures.
format Preprint
id arxiv_https___arxiv_org_abs_2511_14364
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Robust Two-Qubit Geometric Phase Gates using Amplitude and Frequency Ramping
Bowers, Christina
Palani, Deviprasath
Barta, John
Guglielmo, Tyler
Libby, Stephen
Leibfried, Dietrich
Slichter, Daniel
Quantum Physics
Atomic Physics
We demonstrate a method for generating entanglement between trapped atomic ions based on adiabatically ramped state-dependent forces. By ramping both the amplitude of the state-dependent force and the motional mode frequencies, we realize an entangling operation that is robust to motional mode occupation and drifts in the mode frequencies. We measure Bell state fidelities above 0.99 across a broad range of ramp parameters and with motional occupations up to 10 phonons. This technique enables high-fidelity entangling operations without ground-state cooling, has a reduced calibration overhead, and is well suited for both quantum logic spectroscopy applications and scalable quantum computing architectures.
title Robust Two-Qubit Geometric Phase Gates using Amplitude and Frequency Ramping
topic Quantum Physics
Atomic Physics
url https://arxiv.org/abs/2511.14364