论文标题

超出X射线吸收光谱模拟中的电偶极近似值:相对论理论的经验教训

Beyond the electric-dipole approximation in simulations of X-ray absorption spectroscopy: Lessons from relativistic theory

论文作者

List, Nanna Holmgaard, Melin, Timothé Romain Léo, van Horn, Martin, Saue, Trond

论文摘要

我们提出了三个方案,超出了四分量相对论框架内X射线吸收光谱计算中的电动偶极近似值。第一个是基于完整的半古典光线相互作用算子,而另外两个则基于库仑仪(速度表示)和多极仪(长度表示)内的截断相互作用。我们将多极规的推导推导到任意膨胀点,并表明与不同膨胀点相对应的电势与量规变换有关,前提是扩展未截断。这表明多极仪中观察到的量规 - 原始依赖性不仅仅是有限的基础设定效应。相对论形式主义的简单性可以使截短的交互作用的任意实现(随着和不进行旋转平均)的任意实现,从而使我们能够通过与完整的配方进行数字测试其收敛行为。我们证实了一个观察结果,即电 - 偶极的振荡器强度允许TICL $ _4 $的配体K-EDGE转变计算为波矢量的二阶时,但也表明,将高阶贡献包含允许使用完整的轻度互动获得的结果收敛到结果。但是,在较高的能量下,这种扩展的缓慢收敛性变得戏剧性,使这种方法充其量是不切实际的。因此,当超出电动偶极近似值时,我们建议使用完整的光 - 物质相互作用。

We present three schemes to go beyond the electric-dipole approximation in X-ray absorption spectroscopy calculations within a four-component relativistic framework. The first is based on the full semi-classical light-matter interaction operator, and the two others on a truncated interaction within Coulomb gauge (velocity representation) and multipolar gauge (length representation). We generalize the derivation of multipolar gauge to an arbitrary expansion point and show that the potentials corresponding to different expansion point are related by a gauge transformation, provided the expansion is not truncated. This suggests that the observed gauge-origin dependence in multipolar gauge is more than just a finite-basis set effect. The simplicity of the relativistic formalism enables arbitrary-order implementations of the truncated interactions, with and without rotational averaging, allowing us to test their convergence behavior numerically by comparison to the full formulation. We confirm the observation that the oscillator strength of the electric-dipole allowed ligand K-edge transition of TiCl$_4$, when calculated to second order in the wave vector, become negative, but also show that inclusion of higher-order contributions allows convergence to the result obtained using the full light-matter interaction. However, at higher energies, the slow convergence of such expansions becomes dramatic and renders such approaches at best impractical. When going beyond the electric-dipole approximation, we therefore recommend the use of the full light-matter interaction.

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