论文标题
对有效库仑相互作用强度的第一原理方法的比较研究$ u _ {\ rm eff} $
Comparative study of first-principles approaches for effective Coulomb interaction strength $U_{\rm eff}$ between localized $f$-electrons: lanthanide metals as an example
论文作者
论文摘要
由于相关强度对强相关材料的模拟具有关键影响,因此已经提出了许多使用第一原理计算获得参数的方法。但是,仍然需要比较使用这些方法获得的不同库仑强度,并研究了它们背后的机制。以灯笼金属为例,我们研究了影响有效的库仑相互作用强度的因素,$ u _ {\ rm eff} $,通过局部筛选的库仑校正(LSCC),线性响应(LR)和受约束的随机相近似近似(CRPA)在VASP中。 $ u^{\ rm lscc} _ {\ rm eff} $值从4.75 eV增加到7.78 eV,$ u^{\ rm lr} _ {\ rm eff} $几乎稳定在6.0 eV(约6.0 eV)(EU,ER和lu),以及$ u^$ uf^aff afl aff afe a for Eff。在光和重型灯笼中,两阶段的趋势都降低了。为了研究这些差异,我们建立了一个计划,以分析轨道定位与筛选效果之间的共存和竞争。我们发现,LSCC和CRPA分别由轨道定位和筛选效果主导,而LR显示了这两个因素之间的竞争平衡。此外,这些方法的性能受到PBE和PBE+$ U $不同起点的影响,尤其是对于CRPA。我们的结果提供了有用的知识,可以理解灯笼材料的$ u _ {\ rm eff} $,并且在其他相关强度模拟方法的研究中也可以使用类似的分析。
As correlation strength has a key influence on the simulation of strongly correlated materials, many approaches have been proposed to obtain the parameter using first-principles calculations. However, the comparison of the different Coulomb strengths obtained using these approaches and an investigation of the mechanisms behind them are still needed. Taking lanthanide metals as an example, we research the factors that affect the effective Coulomb interaction strength, $U_{\rm eff}$, by local screened Coulomb correction (LSCC), linear response (LR) and constrained random-phase approximation (cRPA) in VASP. The $U^{\rm LSCC}_{\rm eff}$ value increases from 4.75 eV to 7.78 eV, $U^{\rm LR}_{\rm eff}$ is almost stable at about 6.0 eV (except for Eu, Er and Lu), and $U^{\rm cRPA}_{\rm eff}$ shows a two-stage decreasing trend in both light and heavy lanthanides. To investigate these differences, we established a scheme to analyze coexistence and competition between the orbital localization and the screening effect. We find that LSCC and cRPA are dominated by the orbital localization and the screening effect, respectively, whereas LR shows a balance of the competition between the two factors. Additionally, the performance of these approaches is influenced by different starting points from PBE and PBE+$U$, especially for cRPA. Our results provide useful knowledge for understanding the $U_{\rm eff}$ of lanthanide materials, and similar analyses can also be used in the research of other correlation strength simulation approaches.