Periodic DFT modeling and vibrational analysis of silver(I) cyanide complexes of thioureas

被引:0
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作者
Saeed Ahmad
Ivelina Georgieva
Muhammad Hanif
Muhammad Monim-ul-Mehboob
Shaukat Munir
Ahsan Sohail
Anvarhusein A. Isab
机构
[1] Prince Sattam bin Abdulaziz University,Department of Chemistry, College of Sciences and Humanities
[2] Bulgarian Academy of Sciences,Institute of General and Inorganic Chemistry
[3] University of Auckland,School of Chemical Sciences
[4] Government Dyal Singh College,Department of Chemistry
[5] University of Engineering and Technology,Department of Chemistry
[6] King Fahd University of Petroleum and Minerals,Department of Chemistry
来源
Journal of Molecular Modeling | 2019年 / 25卷
关键词
Silver(I) complexes; Cyanide; Thiourea; Periodic DFT calculations;
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摘要
The structures of non-ionic [Ag(Tu)(CN)] (1) and ionic [Ag(Dmtu)2]+[Ag(CN)2]− (2) and [Ag(Imt)2]+[Ag(CN)2]− (3) silver(I) complexes, where Tu = thiourea, Dmtu = N,N′-dimethylthiourea and Imt = imidazoline-2-thione), were modeled by periodic DFT/PAW-PBE calculations; results were in good agreement with experiments. The bonding ability of the thiourea ligands (Tu, Dmtu and Imt) and the rival Ag–C, Ag–S, Ag–N and Ag–Ag bonds were estimated by natural population analysis and natural bonding orbital calculations. The metal–ligand bond strengths were found to decrease in the following order Ag-CCN > Ag-Sthiourea > Ag–NCN, and the main bonding contribution was covalent, donor–acceptor and electrostatic, respectively. The non-ionic [Ag(Tu)(CN)] complex formation [distinguished from the ionic Ag(I) complexes] was explained with the largest bonding capacity of the sulfur donor atom of Tu ligand and the strongest covalent and donor-acceptor Ag–S(Tu) interaction. The infrared (IR) spectra of the experimentally observed structures were reliably interpreted and the IR vibrations, which were sensitive to the ligand coordination to Ag(I) ion and to the weak intra- and intermolecular interactions, were selected with the help of DFT frequency calculations in the solid state.
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