Malček Michal, Bučinský Lukáš, Valko Marián, Biskupič Stanislav
Institute of Physical Chemistry and Chemical Physics FCFT, Slovak University of Technology, Radlinskeho 9, Bratislava, SK-812 37, Slovakia,
J Mol Model. 2015 Sep;21(9):237. doi: 10.1007/s00894-015-2752-8. Epub 2015 Aug 18.
The presented paper is focused on the calculation of hyperfine coupling constants (HFCC) of Cu (2+) ion in water environment. To simulate the conditions of the electron paramagnetic resonance (EPR) experiment in aqueous phase, molecular dynamics using the density functional theory (DFT) was employed. In total three different functionals (BLYP, B3LYP, M06) were employed for studying their suitability in describing coordination of Cu (2+) by water molecules. The system of our interest was composed of one Cu (2+) cation surrounded by a selected number (between thirty and fifty) of water molecules. Besides the non-relativistic HFCCs (Fermi contact terms) of Cu (2+) also the four-component relativistic HFCC calculations are presented. The importance of the proper evaluation of HFCCs, the inclusion of spin-orbit term, for Cu (2+) containing systems (Neese, J. Chem. Phys. 118, 3939 2003; Almeida et al., Chem. Phys. 332, 176 2007) is confirmed at the relativistic four-component level of theory.
本文聚焦于水环境中Cu(2+)离子的超精细耦合常数(HFCC)的计算。为了模拟水相中电子顺磁共振(EPR)实验的条件,采用了基于密度泛函理论(DFT)的分子动力学方法。总共使用了三种不同的泛函(BLYP、B3LYP、M06)来研究它们在描述水分子与Cu(2+)配位方面的适用性。我们感兴趣的体系由一个被选定数量(三十到五十个之间)的水分子包围的Cu(2+)阳离子组成。除了Cu(2+)的非相对论性HFCC(费米接触项),还给出了四分量相对论性HFCC计算结果。在相对论性四分量理论水平上,证实了对含Cu(2+)体系正确评估HFCC以及包含自旋轨道项的重要性(Neese,《化学物理杂志》118,3939 2003;Almeida等人,《化学物理》332,176 2007)。