Desai Mittal L, Si Mrinal Kanti, Lo Rabindranath, Ganguly Bishwajit
Computation and Simulation Unit (Analytical Discipline and Centralized Instrument Facility), CSIR-Central Salt & Marine Chemicals Research Institute, Bhavnagar, Gujarat, India, 364 002.
J Mol Model. 2015 Aug;21(8):218. doi: 10.1007/s00894-015-2767-1. Epub 2015 Aug 1.
A systematic computational study has been carried out using post-Hartree-Fock and density functional theory methods on half sandwich (M-Cp), sandwich (Cp-M-Cp), inversed sandwich (M-Cp-M), and multi-decker chain complexes of alkali metal ions (Na(+), and K(+)). The binding affinity of cyclopentadienyl anion (Cp) with K(+) and Na(+) ions has been studied in half sandwich, sandwich, inversed sandwich, and multi-decker chain complexes. These complexes have been examined in the aqueous phase. The calculated results show that Cp anion can preferentially bind with Na(+) ion over K(+) ion in aqueous phase. The results obtained from DFT calculations have been compared with the crystal structures of Cp-Na and Cp-K complexes. The Bader's atoms in molecule (AIM) analysis were performed to characterize the non-covalent cation-π interactions in the Cp-M complexes. The calculated electron density at cage critical point indicates the strength of the Cp-M complexes. Energy decomposition analysis (EDA) has also been performed to investigate the origins of these interactions. The electrostatic interaction contributes significantly to the total interaction energy in Cp-M complexes. The relative stability difference of cyclopentadienyl anion (Cp) with K(+) and Na(+) ions in aqueous phase can be exploited for the separations from mixture such as sea bittern. The lower stability of K-Cp complex can induce to precipitate the K(+) ions more easily than the corresponding Na(+) ions. Graphical Abstract Potassium ion from sodium ion with cyclopentadienyl anion as receptor.
已使用后哈特里 - 福克和密度泛函理论方法对碱金属离子(Na⁺和K⁺)的半夹心(M - Cp)、夹心(Cp - M - Cp)、反夹心(M - Cp - M)和多夹层链配合物进行了系统的计算研究。在半夹心、夹心、反夹心和多夹层链配合物中研究了环戊二烯基阴离子(Cp)与K⁺和Na⁺离子的结合亲和力。这些配合物已在水相中进行了研究。计算结果表明,在水相中,Cp阴离子与Na⁺离子的结合优先于与K⁺离子的结合。将密度泛函理论计算得到的结果与Cp - Na和Cp - K配合物的晶体结构进行了比较。进行了巴德分子中的原子(AIM)分析以表征Cp - M配合物中的非共价阳离子 - π相互作用。笼关键点处的计算电子密度表明了Cp - M配合物的强度。还进行了能量分解分析(EDA)以研究这些相互作用的起源。静电相互作用对Cp - M配合物的总相互作用能有显著贡献。环戊二烯基阴离子(Cp)与K⁺和Na⁺离子在水相中的相对稳定性差异可用于从诸如卤水中的混合物中进行分离。K - Cp配合物较低的稳定性会导致K⁺离子比相应的Na⁺离子更容易沉淀。图形摘要:以环戊二烯基阴离子为受体从钠离子中分离钾离子。