Thermometry of Trapped Ions Based on Bichromatic Driving

Fuente: arXiv
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Autori principali: Li, Xie-Qian, Tao, Yi, Chen, Ting, Wu, Wei, Xie, Yi, Wu, Chun-Wang, Chen, Ping-Xing
Natura: Preprint
Pubblicazione: 2024
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author Li, Xie-Qian
Tao, Yi
Chen, Ting
Wu, Wei
Xie, Yi
Wu, Chun-Wang
Chen, Ping-Xing
author_facet Li, Xie-Qian
Tao, Yi
Chen, Ting
Wu, Wei
Xie, Yi
Wu, Chun-Wang
Chen, Ping-Xing
contents Accurate thermometry of laser-cooled ions is crucial for the performance of the trapped-ions quantum computing platform. However, most existing methods face a computational exponential bottleneck. Recently, a thermometry method based on bichromatic driving was theoretically proposed by Ivan Vybornyi et al. to overcome this obstacle, which allows the computational complexity to remain constant with the increase of ion numbers. In this paper, we provide a detailed statistical analysis of this method and prove its robustness to several imperfect experimental conditions using Floquet theory. We then experimentally verify its good performance on a linear segmented surface-electrode ion trap platform for the first time. This method is proven to be effective from near the motional ground state to a few mean phonon numbers. Our theoretical analysis and experimental verification demonstrate that the scheme can accurately and efficiently measure the temperature in ion crystals.
format Preprint
id arxiv_https___arxiv_org_abs_2407_15182
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Thermometry of Trapped Ions Based on Bichromatic Driving
Li, Xie-Qian
Tao, Yi
Chen, Ting
Wu, Wei
Xie, Yi
Wu, Chun-Wang
Chen, Ping-Xing
Quantum Physics
Accurate thermometry of laser-cooled ions is crucial for the performance of the trapped-ions quantum computing platform. However, most existing methods face a computational exponential bottleneck. Recently, a thermometry method based on bichromatic driving was theoretically proposed by Ivan Vybornyi et al. to overcome this obstacle, which allows the computational complexity to remain constant with the increase of ion numbers. In this paper, we provide a detailed statistical analysis of this method and prove its robustness to several imperfect experimental conditions using Floquet theory. We then experimentally verify its good performance on a linear segmented surface-electrode ion trap platform for the first time. This method is proven to be effective from near the motional ground state to a few mean phonon numbers. Our theoretical analysis and experimental verification demonstrate that the scheme can accurately and efficiently measure the temperature in ion crystals.
title Thermometry of Trapped Ions Based on Bichromatic Driving
topic Quantum Physics
url https://arxiv.org/abs/2407.15182