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Atomic interactions in precision interferometry using Bose-Einstein condensates

机译:玻色-爱因斯坦凝聚物在精密干涉测量中的原子相互作用

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摘要

We present theoretical tools for predicting and reducing the effects of atomic interactions in Bose-Einstein condensate (BEC) interferometry experiments. To address mean-field shifts during free propagation, we derive a robust scaling solution that reduces the three-dimensional Gross-Pitaevskii equation to a set of three simple differential equations valid for any interaction strength. To model the other common components of a BEC interferometer—condensate splitting, manipulation, and recombination—we generalize the slowly varying envelope reduction, providing both analytic handles and dramatically improved simulations. Applying these tools to a BEC interferometer to measure the fine structure constant, a [S. Gupta, K. Dieckmann, Z. Hadzibabic, and D. E. Pritchard, Phys. Rev. Lett. 89, 140401 (2002)], we find agreement with the results of the original experiment and demonstrate that atomic interactions do not preclude measurement to better than part-per-billion accuracy, even for atomic species with relatively large scattering lengths. These tools help make BEC interferometry a viable choice for a broad class of precision measurements.
机译:我们提供了用于预测和减少Bose-Einstein凝聚(BEC)干涉测量实验中原子相互作用的影响的理论工具。为了解决自由传播期间的平均场偏移,我们导出了一个鲁棒的缩放解决方案,该解决方案将三维Gross-Pitaevskii方程简化为对任何相互作用强度均有效的三个简单微分方程组。为了对BEC干涉仪的其他常见组件进行建模(冷凝液分离,处理和重组),我们对缓慢变化的包络线减小进行了概括,同时提供了分析手柄和显着改进的仿真。将这些工具应用于BEC干涉仪以测量精细结构常数[S. Gupta,K.Dieckmann,Z.Hadzibabic和D.E.Pritchard,物理学。牧师89,140401(2002)],我们发现与原始实验的结果一致,并证明即使对于具有相对较大散射长度的原子种类,原子间的相互作用也不能排除测量结果优于十亿分之一的精度。这些工具有助于使BEC干涉测量成为各种精密测量的可行选择。

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