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Spin-resolved correlations in the warm-dense homogeneous electron gas

机译:温致密均匀电子气体中的旋转相关的相关性

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We have studied spin-resolved correlations in the warm-dense homogeneous electron gas by determining the linear density and spin-density response functions, within the dynamical self-consistent mean-field theory of Singwi et al. The calculated spin-resolved pair-correlation function g(sigma sigma') (r) is compared with the recent restricted path-integral Monte Carlo (RPIMC) simulations due to Brown et al. [Phys. Rev. Lett. 110, 146405 (2013)], while interaction energy Eint and exchange-correlation free energy F-xc with the RPIMC and very recent ab initio quantum Monte Carlo (QMC) simulations by Dornheim et al. [Phys. Rev. Lett. 117, 156403 (2016)]. g(up arrow down arrow)(r) is found to be in good agreement with the RPIMC data, while a mismatch is seen in g(up arrow down arrow)(r) at small r where it becomes somewhat negative. As an interesting result, it is deduced that a non-monotonic T-dependence of g(0) is driven primarily by g(up arrow down arrow)(0). Our results of Eint and Fxc exhibit an excellent agreement with the QMC study due to Dornheim et al., which deals with the finite-size correction quite accurately. We observe, however, a visible deviation of Eint from the RPIMC data for high densities (similar to 8% at r(s) = 1). Further, we have extended our study to the fully spin-polarized phase. Again, with the exception of high density region, we find a good agreement of Eint with the RPIMC data. This points to the need of settling the problem of finite-size correction in the spin-polarized phase also. Interestingly, we also find that the thermal effects tend to oppose spatial localization as well as spin polarization of electrons.
机译:在Singwi等人的动态自我一致的平均场理论内,通过确定线性密度和旋转密度响应函数研究了温致密的均相电子气中的自旋分辨相关性。将计算出的自旋分辨对对相关函数G(Sigma Sigma')(R)与棕色等人的最近受限的路径积分蒙特卡罗(RPIMC)模拟进行比较。 [物理。 rev. lett。 110,146405(2013)],同时与Dornheim等人的互动能量效果和自由能量F-XC与RPIMC和最近的AB Initum Monte Carlo(QMC)模拟。 [物理。 rev. lett。 117,156403(2016)]。 g(向上箭头向下箭头)(r)与RPIMC数据相一致,而在小R(向上箭头向下箭头)(R)中看到不匹配,其中变为稍为负面。作为一个有趣的结果,推导出G(0)的非单调T依赖性主要由G(向上箭头向下箭头)(0)驱动。由于Dornheim等人,我们的Eint和FXC的结果与QMC研究表现出很好的一致性,这使得能够非常准确地处理有限尺寸的校正。然而,我们观察到芯片的可见偏差从RPIMC数据进行高密度(类似于R(s)= 1的8%)。此外,我们已经将我们的研究扩展到完全自旋极化阶段。同样,除了高密度区域之外,我们发现模板与RPIMC数据很好。这指出了在旋转偏振阶段中的有限尺寸校正问题的需要。有趣的是,我们还发现热效应倾向于反对空间定位以及电子的自旋极化。

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