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On the inverse Born-Oppenheimer separation for high Rydberg states of molecules

机译:关于高里德堡分子态的Born-Oppenheimer逆分离

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The separation of radial electronic and nuclear motions is discussed with special reference to high Rydberg states of molecules. An inverse separation is obtained when the rapid nuclear motion instantaneously adjusts itself to the position of the Rydberg electron. The electron moves in the potential averaged over the position of the nuclei (and their valence electrons). This inverse separation is useful when omega n(3) > 1, where omega is the spacing of nuclear energy states (in au) and n is the principal quantum number of the Rydberg electron whose orbital period increases as n(3). The inverse Born-Oppenheimer separation can break down owing to the finite kinetic energy of the Rydberg electron. Like the Born-Oppenheimer separation, its inverse can also be formulated in an adiabatic or a diabatic basis. The diabatic inverse Born-Oppenheimer is practical both for interpretation of zero electron kinetic energy (ZEKE) spectra and for computations. Explicit results are given for a model system of an electron orbiting a vibrating dipole, identifying the relevant coupling constants. The discussion emphasizes the radial motion and the limits discussed here are not quite equivalent to the four (or, actually, five) Hund's coupling cases relevant to angular momentum coupling schemes. (C) 1998 John Wiley & Sons, Inc. [References: 58]
机译:讨论了径向电子运动与核运动的分离,并特别参考了分子的高Rydberg态。当快速核运动瞬间将自身调整到里德堡电子的位置时,就会获得逆分离。电子在核位置(及其价电子)上平均的电势中移动。当ωn(3)> 1时,这种逆分离非常有用,其中ω是核能态的间距(单位为au),n是轨道周期随n(3)增大的里德堡电子的主要量子数。由于Rydberg电子的有限动能,Born-Oppenheimer逆分离会破裂。像Born-Oppenheimer分离一样,它的逆也可以在绝热或非绝热的基础上制定。绝热反演的Born-Oppenheimer既可用于解释零电子动能(ZEKE)光谱,又可用于计算。给出了一个围绕振动偶极子运动的电子模型系统的明确结果,确定了相关的耦合常数。讨论强调了径向运动,此处讨论的极限并不完全等同于与角动量耦合方案相关的四个(或实际上五个)洪德耦合情况。 (C)1998 John Wiley&Sons,Inc. [参考:58]

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