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准二维各向同性激光冷却的光场仿真

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在各向同性激光冷却原子实验中,光场分布是影响冷原子分布的重要因素,可以利用真空腔的结构和激光的注入方式的不同来调控腔内的冷原子分布。本文提出了一种扁平形漫反射腔体结构,并对冷却光的不同注入方式和不同尺寸的腔体结构形成的光场分布进行了仿真。仿真结果表明,与自由空间光入射相比,激光由光纤入射能够获得更均匀的准二维分布的光场,因此可以通过调节光纤的入射角度及光纤参数,实现对光场均匀度的优化。此外,随着腔体边长的等比放大,腔内光功率密度呈负指数幂衰减。扁平形漫反射腔形状接近二维,在准二维分布的光场和特殊的扁平形腔体结构的作用下,能够获得呈准二维分布的冷原子,在量子传感及量子精密测量领域具有重要的应用前景。
Design and Simulation of Optical Field in Quasi-Two-Dimensional Isotropic Laser Cooling
Objective Isotropic laser cooling is regarded as one of the crucial laser cooling techniques because of its distinctive benefits including simplicity,compactness,and robustness.It has been extensively applied in areas including atomic microwave clocks,quantum simulation,and quantum sensing.As a distinct distribution type of cold atoms in isotropic laser cooling,cold atoms with quasi-two-dimensional distributions have significant applications and usefulness in fields of study,including atomic cooling and quantum precision measurement.Isotropic laser cooling does not restrict atoms,different from techniques like magneto-optical traps.The distributions of the optical field and the cold atoms inside the cavity are significantly influenced by the laser injection methodology and cavity design.To obtain cold atoms with a quasi-two-dimensional distribution,one must effectively establish a uniformly distributed quasi-two-dimensional optical field in a flat cavity.In order to get a uniform optical field,we explore the impact of various incident optical field parameters on the optical field distribution using optical simulations to study how to produce a quasi-two-dimensional optical field distribution.Methods The main method for creating a nearly two-dimensional optical field in a flat cavity is the subject of this study.We propose a flat diffusion cavity-based cavity structure for the first time.It models the effects of two alternative injection techniques,namely free-space injection and optical fiber injection,on the optical field distribution using optical simulation software.Using the optical fiber injection technique as a foundation,we explore how changing the angle of injection affects the way the light field is distributed inside the cavity.We also investigate the distribution of the optical field inside the cavity as a function of important optical fiber characteristics,particularly the numerical aperture and core diameter.Finally,we investigate the relationship between differences in the optical field distribution inside the cavity and variations in cavity diameters,and this demonstrates that by adjusting these factors,we may significantly improve the optical field's homogeneity.Results and Discussions The simulation results show that the optical fiber injection method is superior to the free-space optical injection strategy in producing a homogeneous optical field within the flat diffuse-reflectance cavity(Fig.4).Furthermore,by modifying particular parameters,the optical field may be optimized.The homogeneity of the optical field is improved to some extent when the angle of incidence of the optical fiber rotates within reasonable bounds.To keep a uniform optical field distribution,it is crucial to prevent large angle variations(Fig.5).While changes in core diameter have relatively little influence on the optical field distribution,variations in numerical aperture have a large impact on the uniformity of the optical field(Fig.6).As a result,choosing an optical fiber with the right specifications is essential for improving the homogeneity of the optical field.Due to structural modifications,increasing the cavity height while keeping the proper height enhances the optical field dispersion.Sometimes,it even improves the optical power density at particular locations.The optical power density distribution within the cavity,however,shows a declining tendency with an overall rise in height(Fig.7).With a rising side length scaling factor,the optical power density inside the cavity displays a negative power-law relationship decrease pattern.The power consumption for the incident cooling light therefore grows dramatically as the cavity volume expands,even with the same optical power density requirements(Fig.8).Conclusions Establishing a uniform optical power density distribution is a difficult point in studies designed to achieve a quasi-two-dimensional distribution of cold atoms within a flat diffuse-reflectance cavity.We simulate several cooling light injection strategies.When optical fiber injection is utilized instead of free-space optical injection,the optical field distribution is more uniform.The flatness of the optical field can be optimized within particular locations by adjusting the angle of incidence of the optical cable.The optical field's homogeneity is also strongly impacted by the optical fiber's numerical aperture.The initial beam diameter and divergence angle of the incident light are both determined by the numerical aperture and core diameter of the optical fiber.The flatness of the optical field can be improved within certain geographic areas by using optical fibers with the right characteristics.The optical power density inside the cavity shows a negative exponential drop trend as the cavity volume grows.These simulation findings offer helpful pointers for attaining a very homogeneous and quasi-two-dimensional optical field distribution.They also clarify the connection between variations in cavity size and the optical field distribution in the context of isotropic laser cooling.

optical field simulationdiffuse reflectionquasi-two-dimensional optical fieldisotropic laser cooling

张孝、王鑫、王文丽、孙远、刘亮

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中国科学院上海光学精密机械研究所航天激光工程部,上海 201800

中国科学院大学,北京 100049

中国科学院上海光学精密机械研究所量子光学重点实验室,上海 201800

光场仿真 漫反射 准二维光场 各向同性激光冷却

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(3)
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