Spatial calibration of high-density absorption imaging

IF 1.5 4区 物理与天体物理 Q3 OPTICS Journal of Physics B: Atomic, Molecular and Optical Physics Pub Date : 2024-06-13 DOI:10.1088/1361-6455/ad53ae
T Vibel, M B Christensen, M A Kristensen, J J Thuesen, L N Stokholm, C A Weidner and J J Arlt
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Abstract

The accurate determination of atom numbers is an ubiquitous problem in the field of ultracold atoms. For modest atom numbers, absolute calibration techniques are available, however, for large numbers and high densities, the available techniques neglect many-body scattering processes. Here, a spatial calibration technique for time-of-flight absorption images of ultracold atomic clouds is presented. The calibration is obtained from radially averaged absorption images and we provide a practical guide to the calibration process. It is shown that the calibration coefficient scales linearly with optical density and depends on the absorbed photon number for the experimental conditions explored here. This allows for the direct inclusion of a spatially dependent calibration in the image analysis. For typical ultracold atom clouds the spatial calibration technique leads to corrections in the detected atom number up to and temperature up to in comparison to previous calibration techniques. The technique presented here addresses a major difficulty in absorption imaging of ultracold atomic clouds and prompts further theoretical work to understand the scattering processes in ultracold dense clouds of atoms for accurate atom number calibration.
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高密度吸收成像的空间校准
准确测定原子序数是超冷原子领域普遍存在的问题。对于原子数量不多的情况,可以使用绝对校准技术,但对于原子数量多、密度高的情况,现有技术会忽略多体散射过程。本文介绍了超冷原子云飞行时间吸收图像的空间校准技术。校准是从径向平均吸收图像中获得的,我们提供了校准过程的实用指南。研究表明,在本文探讨的实验条件下,校准系数与光密度成线性比例,并取决于吸收的光子数。这样就可以在图像分析中直接加入空间相关校准。对于典型的超冷原子云,与之前的校准技术相比,空间校准技术可以对探测到的原子数和温度进行校正。本文介绍的技术解决了超冷原子云吸收成像中的一个主要难题,并推动了进一步的理论研究工作,以了解超冷致密原子云中的散射过程,从而实现精确的原子数校准。
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来源期刊
CiteScore
3.60
自引率
6.20%
发文量
182
审稿时长
2.8 months
期刊介绍: Published twice-monthly (24 issues per year), Journal of Physics B: Atomic, Molecular and Optical Physics covers the study of atoms, ions, molecules and clusters, and their structure and interactions with particles, photons or fields. The journal also publishes articles dealing with those aspects of spectroscopy, quantum optics and non-linear optics, laser physics, astrophysics, plasma physics, chemical physics, optical cooling and trapping and other investigations where the objects of study are the elementary atomic, ionic or molecular properties of processes.
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