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ANGULAR MOMENTUM CHANGING TRANSITIONS IN PROTON-RYDBERG HYDROGEN ATOM COLLISIONS

机译:质子-氢原子碰撞中的角动量变化转变

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Collisions between electrically charged particles and neutral atoms are central for understanding the dynamics of neutral gases and plasmas in a variety of physical situations of terrestrial and astronomical interest. Specifically, redistribution of angular momentum states within the degenerate shell of highly excited Rydberg atoms occurs efficiently in distant collisions with ions. This process is crucial in establishing the validity of the local thermal equilibrium assumption and may also play a role in determining a precise ionization fraction in primordial recombination. We provide an accurate expression for the non-perturbative rate coefficient of collisions between protons and H(n?) ending in a final state H(n?'), with n being the principal quantum number and ?, ?' the initial and final angular momentum quantum numbers, respectively. The validity of this result is confirmed by results of classical trajectory Monte Carlo simulations. Previous results, obtained by Pengelly and Seaton only for dipole-allowed transitions ? → ? ± 1, overestimate the ?-changing collisional rate coefficients approximately by a factor of six, and the physical origin of this overestimation is discussed.
机译:带电粒子与中性原子之间的碰撞对于理解在陆地和天文感兴趣的各种物理情况下中性气体和等离子体的动力学至关重要。具体地说,在与离子的远距离碰撞中,高激发里德堡原子的简并壳内角动量态的重新分布有效地发生。该过程对于确定局部热平衡假设的有效性至关重要,并且在确定原始重组中的精确电离分数方面也可能发挥作用。我们为质子与以最终状态H(n?')结尾的H(n?)之间的碰撞的非摄动速率系数提供了一个精确的表达式,其中n是主要量子数,而α、?'初始和最终角动量量子数。经典轨迹蒙特卡洛模拟的结果证实了这一结果的有效性。由Pengelly和Seaton获得的先前结果仅适用于偶极子允许的跃迁? →? ±1,高估了π改变的碰撞率系数约六倍,并讨论了这种高估的物理原因。

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