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New Jellium Model for Alkali Metals and its Future Applications to Metal Clusters

机译:碱金属新Jellium模型及其在金属团簇中的应用前景

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摘要

This research develops a new method for understanding the properties of materials. The new method was applied to alkali metals to examine how well it can predict the Wigner-Seitz radius, rs. Pseudo-potentials for the individual atoms were generated and utilized to obtain the interaction energy within these metals.The system involves 4 coulombic charges; two of them are the result of the neutral atom (one valence electron and one positive core charge for alkali atoms) and the other two are background charges of equal and opposite amount. This coulombic interaction will behave differently depending on the element that composes the system. There are four groups of energy for this system. One of them has the appearance of the Jellium model, which is solved with Density Functional Theory. From the other three groups, one of them will alter the minimum of the Jellium model for different elements in the system. This group is partially calculated with the help of Ewald summation. This calculation exemplifies that bcc is favored since it is lower in energy than fcc, which is in agreement with experiments for alkali metals. The correction to this energy will be due to the core electronsu27 interaction with a uniform negative charge background. This new method will also be beneficial to calculate the ground state energy of clusters by introducing surface boundaries in the system.
机译:这项研究开发了一种了解材料特性的新方法。将该新方法应用于碱金属,以检验其可以很好地预测Wigner-Seitz半径rs。产生了单个原子的伪电势,并利用这些电势获得了这些金属之间的相互作用能。其中两个是中性原子的结果(一个价电子和一个碱性原子的正核电荷),另外两个是等量且相反数量的本底电荷。这种库仑相互作用将根据组成系统的元素而有所不同。该系统有四类能量。其中之一具有Jellium模型的外观,可通过密度泛函理论解决。对于其他三组,其中一组将更改系统中不同元素的Jellium模型的最小值。该组是在Ewald求和的帮助下部分计算的。该计算例证出了bcc的优势,因为它的能量低于fcc,这与碱金属的实验一致。对该能量的校正将归因于核心电子具有均匀负电荷背景的相互作用。通过在系统中引入表面边界,这种新方法也将有利于计算团簇的基态能量。

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    Matranca Guillermo;

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  • 年度 2012
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