Atomic Form Factor Calculations of S-states of Helium

S. Diallo, I. Faye, L. Gomis, M. Tall, I. Diédhiou
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引用次数: 1

Abstract

Variational calculations of the helium atom states are performed using highly compact 26-parameter correlated Hylleraas-type wave functions. These correlated wave functions used here yield an accurate expectation energy values for helium ground and two first excited states. A correlated wave function consists of a generalized exponential expansion in order to take care of the correlation effects due to N-corps interactions. The parameters introduced in our model are determined numerically by minimization of the total atomic energy of each electronic configuration. We have calculated all integrals analytically before dealing with numerical evaluation. The 1S2 11S and 1S2S 21, 3S states energies, charge distributions and scattering atomic form factors are reported. The present work shows high degree of accuracy even with relative number terms in the trial Hylleraas wave functions definition. The results presented here, indicate that the highly compact twenty-six variational parameters model will have the quantitative and qualitative applicability for the study of electronic correlation. The correlated wave functions are used to calculate the atomic form factor for the diffusion of electrons by the helium atom. The atomic form factor is evaluated as the Fourier transform of the electron density distribution of an atom or ion, which is calculated from theoretical correlated wave functions for free atoms. Finally, suggestions are made as to the way the atomic form factor of the helium atom may be approximated by a sum of Gaussians for efficiency use.
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氦s态的原子形状因子计算
利用高度紧凑的26参数相关hyleraas型波函数进行了氦原子态的变分计算。这里使用的这些相关波函数产生了氦基态和两个第一激发态的准确期望能值。一个相关波函数由一个广义的指数展开组成,以照顾由于n -团相互作用的相关效应。在我们的模型中引入的参数是通过最小化每个电子构型的总原子能来确定的。在进行数值计算之前,我们对所有积分都进行了解析计算。报道了1S2 11S和1S2S 21,3s态的能量、电荷分布和散射原子形状因子。本文的工作表明,在试用hyleraas波函数定义中,即使使用相对数目项,也具有很高的准确性。本文的研究结果表明,高度紧凑的26变分参数模型对电子相关的研究具有定量和定性的适用性。相关波函数用于计算氦原子中电子扩散的原子形状因子。原子的形状因子被评价为原子或离子的电子密度分布的傅里叶变换,这是由自由原子的理论相关波函数计算得到的。最后,提出了氦原子的原子形状因子可以用高斯函数的和来近似的方法,以提高效率。
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