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首页> 外文期刊>International Journal of Quantum Chemistry >Effective hamiltonian crystal field: Present status and applications to iron compounds
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Effective hamiltonian crystal field: Present status and applications to iron compounds

机译:有效的哈密尔顿晶体场:铁化合物的现状与应用

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We review the basics of the Effective Hamiltonian Crystal Field (EHCF) method originally targeted for calculations of the intra-shell excitations in the d-shells of coordination compounds of the first row transition metal. The formalism employs in the concerted way the McWeeny's group-function approximation and the Lowdin partition technique. It is needed for description of the transition metal complexes with partially filled d-shells where the (static) electronic correlations are manifested. These features are particularly important for electron fillings close to half shell ones occurring, for example, in the Fe2+ and Fe3+ ions. Recently we extended this methodology to polynuclear coordination compounds to describe magnetic interactions of the effective spins residing in several open d-shells. This improves the accuracy from about 1000 cm(-1) to that of about 100 cm(-1), that is, eventually by an order of magnitude. This approach implemented in the MagAixTic package is applied here to a series of binuclear Fe(III) complexes featuring -oxygen superexchange pathways. The results of calculations are in a reasonable agreement with available experimental data and other theoretical studies of protonated bridges. Further we discuss the application of the EHCF to analysis of Mosbauer experiments performed on two organometallic solids: FeNCN and Fe(HNCN)(2) and conjecture a new thermal effect in the latter material. (c) 2015 Wiley Periodicals, Inc.
机译:我们回顾了有效哈密顿晶体场(EHCF)方法的基础,该方法最初用于计算第一排过渡金属的配位化合物d壳中的壳内激发。形式主义以一致的方式使用了McWeeny的群函数逼近和Lowdin分割技术。对于具有部分填充的d-壳的过渡金属配合物的描述是需要的,其中显示了(静态)电子相关性。这些特征对于例如在Fe2 +和Fe3 +离子中发生的接近半壳的电子填充特别重要。最近,我们将此方法扩展到多核配位化合物,以描述存在于几个开放d壳中的有效自旋的磁性相互作用。这将精度从大约1000 cm(-1)提高到大约100 cm(-1),即最终提高了一个数量级。在MagAixTic软件包中实现的这种方法在这里应用于具有-氧超交换途径的一系列双核Fe(III)配合物。计算结果与可用的实验数据和质子化桥梁的其他理论研究合理地吻合。此外,我们讨论了EHCF在Mosbauer实验中对两种有机金属固体:FeNCN和Fe(HNCN)(2)进行分析的应用,并推测了后者中的新热效应。 (c)2015年威利期刊有限公司

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