Effect of micromotion and local stress in quantum simulations with trapped ions in optical tweezers
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| Publication date | 10-2022 |
| Journal | Physical Review A |
| Article number | 042612 |
| Volume | Issue number | 106 | 4 |
| Number of pages | 7 |
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| Abstract |
The ability to program and control interactions provides the key to implementing large-scale quantum simulation and computation in trapped-ion systems. Adding optical tweezers, which can tune the phonon spectrum and thus modify the phonon-mediated spin-spin interaction, was recently proposed as a way of programing quantum simulators for a broader range of spin models [Arias Espinoza, Phys. Rev. A 104, 013302 (2021)2469-992610.1103/PhysRevA.104.013302]. In this work we study the robustness of our findings in the presence of experimental imperfections: micromotion, local stress, and intensity noise. We show that the effects of micromotion can be easily circumvented when designing and optimizing tweezer patterns to generate a target interaction. Furthermore, while local stress, whereby the tweezers apply small forces on individual ions, may appear to enable further tuning of the spin-spin interactions, any additional flexibility is negligible. We conclude that optical tweezers are a useful method for controlling interactions in trapped-ion quantum simulators in the presence of micromotion and imperfections in the tweezer alignment, but require intensity stabilization on the subpercent level. |
| Document type | Article |
| Language | English |
| Published at | https://doi.org/10.1103/PhysRevA.106.042612 |
| Other links | https://www.scopus.com/pages/publications/85140249155 |
| Downloads |
PhysRevA.106.042612
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