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Coherence in the presence of absorption and heating in a molecule interferometer

机译:分子干涉仪中存在吸收和加热时的相干性

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Matter-wave interferometry can be used to probe the foundations of physics and to enable precise measurements of particle properties and fundamental constants. It relies on beam splitters that coherently divide the wave function. In atom interferometers, such elements are often realised using lasers by exploiting the dipole interaction or through photon absorption. It is intriguing to extend these ideas to complex molecules where the energy of an absorbed photon can rapidly be redistributed across many internal degrees of freedom. Here, we provide evidence that center-of-mass coherence can be maintained even when the internal energy and entropy of the interfering particle are substantially increased by absorption of photons from a standing light wave. Each photon correlates the molecular center-of-mass wave function with its internal temperature and splits it into a superposition with opposite momenta in addition to the beam-splitting action of the optical dipole potential.
机译:物质波干涉测量法可以用来探测物理学的基础,并可以精确地测量粒子的性质和基本常数。它依赖于分束器,这些分束器可以连贯地划分波函数。在原子干涉仪中,此类元素通常是通过利用偶极子相互作用或通过光子吸收而使用激光来实现的。将这些想法扩展到复杂的分子很有趣,在这种分子中,吸收的光子的能量可以迅速地在许多内部自由度上重新分布。在这里,我们提供的证据表明,即使干扰粒子的内部能量和熵通过从固定光波吸收光子而大大增加,也可以保持质心相干。每个光子将分子质心波函数与其内部温度相关联,并且除了光学偶极子势能的分束作用外,还将其分裂为具有相反动量的叠加。

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