Ion-Based Characterization of Laser Beam Profiles for Quantum Information Processing
arXiv:2510.03966 · doi:10.3390/e27111115
Abstract
Laser-driven operations are a common approach for engineering one- and two-qubit gates in trapped-ion arrays. Measuring key parameters of these lasers, such as beam sizes, intensities, and polarizations, is central to predicting and optimizing gate speeds and stability. Unfortunately, it is challenging to accurately measure these properties at the ion location within an ultra-high vacuum chamber. Here, we demonstrate how the ions themselves may be used as sensors to directly characterize the laser beams needed for quantum gate operations. Making use of the four-photon Stark Shift effect in Yb ions, we measure the profiles, alignments, and polarizations of the lasers driving counter-propagating Raman transitions. We then show that optimizing the parameters of each laser individually leads to higher-speed Raman-driven gates with smaller susceptibility to errors. Our approach demonstrates the capability of trapped ions to probe their local environments and to provide useful feedback for improving system performance.
8 pages, 4 figures
References in corpus (16)
- Trapped-Ion Quantum Computing: Progress and Challenges
- Quantum computing with trapped ions
- Multi-particle entanglement of hot trapped ions
- Programmable Quantum Simulations of Spin Systems with Trapped Ions
- Benchmarking an 11-qubit quantum computer
- Manipulation and Detection of a Trapped Yb+ Ion Hyperfine Qubit
- A compact ion-trap quantum computing demonstrator
- Quantum information processing with trapped ions
- Errors in trapped-ion quantum gates due to spontaneous photon scattering
- Ultrafast Gates for Single Atomic Qubits
- A long-lived Zeeman trapped-ion qubit
- Experimental quantum information processing with 43Ca+ ions
- Quantum Control of Qubits and Atomic Motion Using Ultrafast Laser Pulses
- Engineering Large Stark Shifts for Control of Individual Clock State Qubits
- High-fidelity state detection and tomography of a single ion Zeeman qubit
- Precision Polarization Tuning for Light Shift Mitigation in Trapped-Ion Qubits