论文标题

原子磁模拟使用的参数的第一原理计算

First-principles calculation of the parameters used by atomistic magnetic simulations

论文作者

Mankovsky, Sergiy, Ebert, Hubert

论文摘要

虽然磁性材料的基态通常是根据自旋密度函数理论(SDFT)进行了很好的描述,但对有限温度和非平衡性能的理论描述需要超出标准SDFT的范围。时间依赖性的SDFT(TD-SDFT),例如访问动力学属性在计算上非常苛刻,目前几乎不能应用于复杂的固体。在这里,我们关注基于参数化现象学旋转哈密顿量和基于SDFT的电子结构计算的替代方法,从而通过使用Landau-Lifshitz-Gilbert(LLG)方程或Monte Carlo Carlo Migulations通过自旋动力模拟来访问动力学和有限的体温特性。我们介绍了各种方法的概述,以计算各种现象学汉密尔顿人的参数,重点是KKR绿色函数方法,这是最灵活的频带结构方法之一,可访问几乎所有相关参数。关于这些,通过执行基于相对论SDFT的计算来解释自旋轨道耦合(SOC)至关重要,因为它对磁各向异性和手性交换相互作用起着由旋转汉密尔顿的DMI参数代表的关键作用。这也涉及吉尔伯特抑制参数,这些参数表征了LLG方程中的磁化耗散,扩展的Heisenberg Hamiltonian的手性多动物相互作用参数,以及旋转液位的交互参数,描述了旋转和晶格动力学过程的相互作用,这些过程是在最近已经开发了有效的计算方案的,这些过程已得到了有效的计算方案。

While the ground state of magnetic materials is in general well described on the basis of spin density functional theory (SDFT), the theoretical description of finite-temperature and non-equilibrium properties require an extension beyond the standard SDFT. Time-dependent SDFT (TD-SDFT), which give for example access to dynamical properties are computationally very demanding and can currently be hardly applied to complex solids. Here we focus on the alternative approach based on the combination of a parameterized phenomenological spin Hamiltonian and SDFT-based electronic structure calculations, giving access to the dynamical and finite-temperature properties for example via spin-dynamics simulations using the Landau-Lifshitz-Gilbert (LLG) equation or Monte Carlo simulations. We present an overview on the various methods to calculate the parameters of the various phenomenological Hamiltonians with an emphasis on the KKR Green function method as one of the most flexible band structure methods giving access to practically all relevant parameters. Concerning these, it is crucial to account for the spin-orbit coupling (SOC) by performing relativistic SDFT-based calculations as it plays a key role for magnetic anisotropy and chiral exchange interactions represented by the DMI parameters in the spin Hamiltonian. This concerns also the Gilbert damping parameters characterizing magnetization dissipation in the LLG equation, chiral multispin interaction parameters of the extended Heisenberg Hamiltonian, as well as spin-lattice interaction parameters describing the interplay of spin and lattice dynamics processes, for which an efficient computational scheme has been developed recently by the present authors.

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