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首页> 外文期刊>The Journal of Chemical Physics >THEORETICAL INVESTIGATION OF THE AUTOIONIZATION PROCESS IN MOLECULAR COLLISION COMPLEXES - COMPUTATIONAL METHODS AND APPLICATIONS TO HE-ASTERISK(2(3)S)+H(1(2)S)
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THEORETICAL INVESTIGATION OF THE AUTOIONIZATION PROCESS IN MOLECULAR COLLISION COMPLEXES - COMPUTATIONAL METHODS AND APPLICATIONS TO HE-ASTERISK(2(3)S)+H(1(2)S)

机译:分子碰撞复合物中自电离过程的理论研究-计算方法及其在He-Asterisk(2(3)S)+ H(1(2)S)中的应用

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The first complete ab initio treatment is applied to the autoionization process in the He*(2s(3)S) + H(1s) collisional complex. The autoionizing resonance state is defined through Feshbach projection based on orbital occupancy, and the corresponding potential is determined from multireference-configuration interaction (MR-CI) calculations with an accuracy of about 10 meV. The energy-dependent coupling with the continuum is derived from a compact (L-2) molecular orbital (MO) without any phase information being lost. This ''Penning MO'' is projected onto the states of the continuum electron for energies that comply with the resonance condition thus providing the l-dependent coupling elements in local approximation. The continuum electron functions are calculated within the static-exchange approximation for up to 25 coupled angular momentum channels. The nuclear dynamics calculation is based on a complex Numerov algorithm and uses a converged set of seven complex coupling matrix elements. Weighting with experimental collision energy distributions finally gives the angle-dependent, as well as the angle-integrated, electron spectra for Penning and associative ionization processes. The results are discussed with respect to previous, either partial or model studies, and are compared with the recent most detailed experimental study of the angular-dependent Penning ionization electron spectra. The close agreement of theory and experiment demonstrates the adequacy of the local complex potential approach, as well as the importance of electron angular momentum transfer so far neglected in theoretical treatments. (C) 1997 American Institute of Physics. [References: 75]
机译:在He *(2s(3)S)+ H(1s)碰撞复合体中,将第一个完整的从头算起的处理应用于自电离过程。通过基于轨道占有率的Feshbach投影定义自电离共振态,并根据多参考-配置相互作用(MR-CI)计算确定相应的电势,精度约为10 meV。与连续体的依赖于能量的耦合来自紧凑的(L-2)分子轨道(MO),而不会丢失任何相位信息。该“笔势MO”被投影到连续电子的状态上,以获得符合共振条件的能量,从而在局部近似中提供了依赖于l的耦合元素。在多达25个耦合角动量通道的静态交换近似值内计算连续电子函数。核动力学计算基于复杂的Numerov算法,并使用七个复杂耦合矩阵元素的集合。最后,通过实验碰撞能量分布进行加权,可以得出Penning和缔合电离过程的角度相关以及角度积分的电子光谱。相对于先前的部分研究或模型研究讨论了结果,并将其与对角度相关的Penning电离电子光谱的最新最详细的实验研究进行了比较。理论和实验的紧密吻合证明了局部复势方法的充分性,以及迄今为止在理论处理中被忽略的电子角动量转移的重要性。 (C)1997美国物理研究所。 [参考:75]

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