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Diffraction of an atom laser in the Raman-Nath regime

机译:拉曼 - 纳特政权中原子激光的衍射

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摘要

An atom interferometer is a ubiquitous tool for measuring fundamental constants and inertial sensing. While it has been extremely useful in measuring inertial rotations, the fine-structure constant, gravity gradients, and local gravity, the measurement process lacks the ability to probe continuously due to its single-shot nature. In this work, we experimentally demonstrate the diffraction of an atom laser in the Raman-Nath regime, a key step towards the development of an atom-laser-based interferometer. The diffraction orders can be precisely controlled, and momenta up to ±18hk can be imparted to the atom laser. We form the "atom laser" by outcoupling a quasicontinuous beam of coherent atoms from a reservoir of ~(87)Rb Bose-Einstein condensate lasting up to 400 ms. This atom laser then interacts with a grating formed by a standing wave of far-detuned laser light. By controlling the interaction time, the strength of diffraction into various orders can be controlled. Such diffraction would allow for the construction of an atom-interferometer to probe changes in physical environments continuously up to a few hundred milliseconds.
机译:原子干涉仪是一种普遍存在的工具,用于测量基本常数和惯性感测。虽然在测量惯性旋转方面非常有用,但由于其单次自然,测量过程缺乏探测的能力缺乏探测的能力。在这项工作中,我们通过实验证明了拉曼 - 狭窄地区的原子激光器的衍射,是朝着原子激光的干涉仪开发的关键步骤。可以精确地控制衍射订单,并且可以赋予原子激光器的瞬发±18Hk。通过从〜(87)RB Bose-Einstein冷凝物的储存器持续到400ms的储存器,形成“原子激光器”。然后该原子激光器与由远离激光的驻波形成的光栅相互作用。通过控制相互作用的时间,可以控制衍射中的衍射强度。这种衍射将允许构造原子干涉仪以探测物理环境的变化连续高达几百毫秒。

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