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Modified Newton's law, braneworlds, and the gravitational quantum well

机译:修正牛顿定律,braneworlds和引力量子阱

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摘要

Most of the theories involving extra dimensions assume that only the gravitational interaction can propagate in them. In such approaches, called braneworld models, the effective, four-dimensional, Newton's law is modified at short as well as at large distances. Usually, the deformation of Newton's law at large distances is parametrized by a Yukawa potential, which arises mainly from theories with compactified extra dimensions. In many other models however, the extra dimensions are infinite. These approaches lead to a large distance power-law deformation of the gravitational Newtonian potential V-N( r), namely V (r) = ( 1+ k(b)/ r(b))V-N( r), which is less studied in the literature. We investigate here the dynamics of a particle in a gravitational quantum well with such a power-law deformation. The effects of the deformation on the energy spectrum are discussed. We also compare our modified spectrum to the results obtained with the GRANIT experiment, where the effects of the Earth's gravitational field on quantum states of ultra-cold neutrons moving above a mirror are studied. This comparison leads to upper bounds on b and k(b).
机译:大多数涉及额外维度的理论都假设只有重力相互作用才能在其中传播。在这种称为braneworld模型的方法中,有效的四维牛顿定律在短距离和远距离都可以修改。通常,牛顿定律在远距离处的变形是由汤川势来参数化的,汤川势主要来自于具有压缩的额外维数的理论。但是,在许多其他模型中,额外的维度是无限的。这些方法导致了引力牛顿势VN(r)的远距离幂律变形,即V(r)=(1+ k(b)/ r(b))VN(r),在下面对此进行了较少的研究。文献。我们在这里研究具有这种幂律变形的引力量子阱中粒子的动力学。讨论了变形对能谱的影响。我们还将经过修改的光谱与通过GRANIT实验获得的结果进行比较,在该实验中,研究了地球引力场对在镜子上方移动的超冷中子的量子态的影响。这种比较导致b和k(b)的上限。

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