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Decoherence in Excited Atoms by Low-Energy Scattering

机译:低能散射激发原子的退相干

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We describe a new mechanism of decoherence in excited atoms as a result of thermal particles scattering by the atomic nucleus. It is based on the idea that a single scattering will produce a sudden displacement of the nucleus, which will be perceived by the electron in the atom as an instant shift in the electrostatic potential. This will leave the atom’s wave-function partially projected into lower-energy states, which will lead to decoherence of the atomic state. The decoherence is calculated to increase with the excitation of the atom, making observation of the effect easier in Rydberg atoms. We estimate the order of the decoherence for photons and massive particles scattering, analyzing several commonly presented scenarios. Our scheme can be applied to the detection of weakly-interacting particles, like those which may be the constituents of Dark Matter, the interaction of which was calculated to have a more prominent effect that the background radiation.
机译:我们描述了由于原子核对热粒子的散射而导致的被激发原子去相干的新机制。基于这样的思想,单个散射将产生原子核的突然位移,原子中的电子会将其感知为静电势的瞬时位移。这将使原子的波函数部分投影为低能态,这将导致原子态退相干。计算出的去相干性随着原子的激发而增加,从而使在里德堡原子中观察该效应变得更加容易。我们分析了几种常见的情况,估计了光子和大颗粒散射的退相干顺序。我们的方案可以应用于检测弱相互作用的粒子,例如那些可能是暗物质的成分的粒子,该粒子的相互作用经计算比背景辐射具有更突出的作用。

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