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首页> 外文期刊>The Journal of Chemical Physics >Calculation of zero-field splitting parameters: Comparison of a two-component noncolinear spin-density-functional method and a one-component perturbational approach
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Calculation of zero-field splitting parameters: Comparison of a two-component noncolinear spin-density-functional method and a one-component perturbational approach

机译:零场分裂参数的计算:两成分非线性自旋密度函数方法与一成分微扰方法的比较

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摘要

Two different sets of approaches for the density-functional calculation of the spin-orbit contributions to zero-field splitting (ZFS) parameters of high-spin systems have been implemented within the same quantum chemistry code ReSpect and have been validated and compared for a series of model systems. The first approach includes spin-orbit coupling variationally in a two-component calculation, using either an all-electron Douglas-Kroll-Hess ansatz or two-component relativistic pseudopotentials. The ZFS parameters are computed directly from energy differences between different relativistic states. Additionally, an approximate second-order perturbation theory approach has been implemented, based on nonrelativistic or scalar relativistic wave functions. For a series of group 16 triplet diatomics and for the octet GdH3 molecules, two-component density functional calculations underestimate the zero-field splitting D systematically by a factor of 2. This may be rationalized readily by the incomplete description of states with vertical bar M-j vertical bar < J by a single-determinantal wave function built from two-component spinors. In the case of two 3d transition metal complexes and for GdH3, the results depend furthermore sensitively on exchange-correlation functional. Results of the alternative one-component approach agree strikingly with the two-component data for systems with small spin-orbit effects and start to deviate from them only for heavier systems with large spin-orbit effects. These results have fundamental implications for the achievable accuracy of one-component density-functional approaches used widely to compute ZFS parameters in the field of molecular magnetism. Possible refinements of both one-and two-component approaches are discussed. (c) 2006 American Institute of Physics.
机译:在同一量子化学代码ReSpect中实施了两组不同的方法,用于密度函数计算高自旋系统零场分裂(ZFS)参数的自旋轨道贡献,并已进行了一系列系列的验证和比较。模型系统。第一种方法包括使用全电子Douglas-Kroll-Hess ansatz或两分量相对论伪势在两分量计算中进行自旋轨道耦合。 ZFS参数直接根据不同相对论状态之间的能量差来计算。另外,基于非相对论或标量相对论波函数,已经实现了近似的二阶微扰理论方法。对于一系列第16组三重态双原子硅原子和八位位组GdH3分子,两组分密度泛函计算低估了零场分裂D的系统系数2。这可以通过垂直条Mj的状态不完整描述而容易地合理化。竖线

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