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Principles and Design of a Zeeman–Sisyphus Decelerator for Molecular Beams

机译:Zeeman-Sisyphus分子束减速器的原理和设计

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摘要

We explore a technique for decelerating molecules using a static magnetic field and optical pumping. Molecules travel through a spatially varying magnetic field and are repeatedly pumped into a weak‐field seeking state as they move towards each strong field region, and into a strong‐field seeking state as they move towards weak field. The method is time‐independent and so is suitable for decelerating both pulsed and continuous molecular beams. By using guiding magnets at each weak field region, the beam can be simultaneously guided and decelerated. By tapering the magnetic field strength in the strong field regions, and exploiting the Doppler shift, the velocity distribution can be compressed during deceleration. We develop the principles of this deceleration technique, provide a realistic design, use numerical simulations to evaluate its performance for a beam of CaF, and compare this performance to other deceleration methods.
机译:我们探索使用静磁场和光泵浦使分子减速的技术。分子在空间变化的磁场中传播,并在它们向每个强磁场区域移动时反复被泵入弱磁场寻找状态,并在向弱磁场移动时被反复泵入强磁场寻找状态。该方法与时间无关,因此适用于减速脉冲和连续分子束。通过在每个弱场区域使用导向磁体,可以同时对光束进行导向和减速。通过减小强磁场区域中的磁场强度并利用多普勒频移,可以在减速期间压缩速度分布。我们开发了这种减速技术的原理,提供了一个现实的设计,使用数值模拟来评估CaF梁的性能,并将这种性能与其他减速方法进行比较。

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