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弹性散射过程的通用原子干涉仪模拟

Universal atom interferometer simulation of elastic scattering processes.

作者信息

Fitzek Florian, Siemß Jan-Niclas, Seckmeyer Stefan, Ahlers Holger, Rasel Ernst M, Hammerer Klemens, Gaaloul Naceur

机构信息

Institut für Quantenoptik, Leibniz Universität Hannover, Welfengarten 1, 30167, Hannover, Germany.

Institut für Theoretische Physik, Leibniz Universität Hannover, Appelstraße 2, 30167, Hannover, Germany.

出版信息

Sci Rep. 2020 Dec 17;10(1):22120. doi: 10.1038/s41598-020-78859-1.

Abstract

In this article, we introduce a universal simulation framework covering all regimes of matter-wave light-pulse elastic scattering. Applied to atom interferometry as a study case, this simulator solves the atom-light diffraction problem in the elastic case, i.e., when the internal state of the atoms remains unchanged. Taking this perspective, the light-pulse beam splitting is interpreted as a space and time-dependent external potential. In a shift from the usual approach based on a system of momentum-space ordinary differential equations, our position-space treatment is flexible and scales favourably for realistic cases where the light fields have an arbitrary complex spatial behaviour rather than being mere plane waves. Moreover, the solver architecture we developed is effortlessly extended to the problem class of trapped and interacting geometries, which has no simple formulation in the usual framework of momentum-space ordinary differential equations. We check the validity of our model by revisiting several case studies relevant to the precision atom interferometry community. We retrieve analytical solutions when they exist and extend the analysis to more complex parameter ranges in a cross-regime fashion. The flexibility of the approach, the insight it gives, its numerical scalability and accuracy make it an exquisite tool to design, understand and quantitatively analyse metrology-oriented matter-wave interferometry experiments.

摘要

在本文中,我们介绍了一个涵盖物质波光脉冲弹性散射所有状态的通用模拟框架。作为一个研究案例应用于原子干涉测量,该模拟器解决了弹性情况下的原子 - 光衍射问题,即原子的内部状态保持不变时的情况。从这个角度来看,光脉冲分束被解释为一个与空间和时间相关的外部势。与基于动量空间常微分方程组的常规方法不同,我们在位置空间的处理方式具有灵活性,并且对于光场具有任意复杂空间行为而非仅仅是平面波的实际情况,其扩展性良好。此外,我们开发的求解器架构可以轻松扩展到捕获和相互作用几何结构的问题类别,而这在动量空间常微分方程的常规框架中没有简单的表述。我们通过回顾几个与精密原子干涉测量领域相关的案例研究来检验我们模型的有效性。当存在解析解时我们将其找回,并以跨状态的方式将分析扩展到更复杂的参数范围。该方法的灵活性、它所提供的见解、其数值可扩展性和准确性使其成为设计、理解和定量分析面向计量学的物质波干涉测量实验的精妙工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a06/7746744/127c5ae0bf64/41598_2020_78859_Fig5_HTML.jpg

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