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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Theoretical investigations on heteronuclear chalcogen-chalcogen interactions: On the nature of weak bonds between chalcogen centers
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Theoretical investigations on heteronuclear chalcogen-chalcogen interactions: On the nature of weak bonds between chalcogen centers

机译:异核硫族元素-硫族元素相互作用的理论研究:硫族元素中心之间弱键的性质

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To understand the intermolecular interactions between chalcogen centers (O, S, Se, Te), quantum chemical calculations on model systems were carried out. These model systems were pairs of monomers of the composition (CH3)(2)X-1 (X-1 = O, S, Se, Te) as the donors and CH(3)X(2)Z (with X-2 = O, S, Se, Te and Z = Me, CN) as the acceptors. The variation of X-1, X-2, and Z leads to 32 pairs with 8 homonuclear cases (X-1 = X-2 = O, S, Se, Te) and 24 heteronuclear cases (X-1 not equal X-2). The MP2/SDB-cc-pVTZ, 6-311G* level of theory was used to derive the geometrical parameters and the interaction energies of the model systems. The pairs with Z = CN (17-32) show a considerably higher interaction energy than the pairs with CH3 groups only (1-16). Natural bond orbital (NBO) analysis revealed that the interaction of the dimers 1, 2, 5, 6, 8, 10, 13, 14, 17, 21, 25, and 29 is mainly due to weak hydrogen bonding between methyl groups and chalcogen centers. These systems all contain hard chalcogen atoms as acceptors. For all other systems, the chalcogen-chalcogen interaction dominates. The one-electron picture of an interaction between the lone pair of the donor chalcogen atom and the chalcogen-carbon antibonding sigma* orbital serves as a model to qualitatively rationalize trends found in many of these systems. However, it has to be applied with some amount of skepticism. A detailed analysis based on symmetry-adapted perturbation theory (SAPT) reveals that induction and dispersion forces dominate and contribute to the bonding in each case. Hydrogen-bonded compounds involve bonding electrostatic contributions. Compounds dominated by chalcogen-chalcogen interactions exhibit bonding due to electrostatic interactions only if one of the chalcogen atoms involved is sulfur or oxygen.
机译:为了理解硫族元素中心(O,S,Se,Te)之间的分子间相互作用,对模型系统进行了量子化学计算。这些模型系统是成对的组成(CH3)(2)X-1(X-1 = O,S,Se,Te)作为供体的单体对和CH(3)X(2)Z(带有X-2 = O,S,Se,Te和Z = Me,CN)作为受体。 X-1,X-2和Z的变异导致32对具有8个同核案例(X-1 = X-2 = O,S,Se,Te)和24个异核案例(X-1不等于X- 2)。使用MP2 / SDB-cc-pVTZ(6-311G *)理论水平来推导模型系统的几何参数和相互作用能。 Z = CN(17-32)的对显示出比仅CH3基团(1-16)更高的相互作用能。自然键轨道(NBO)分析显示二聚体1、2、5、6、8、10、13、14、17、21、25和29的相互作用主要是由于甲基和硫属元素之间的氢键弱中心。这些系统均包含硬硫属元素原子作为受体。对于所有其他系统,硫族元素-硫族元素的相互作用占主导。供体硫族元素原子的孤对与硫族元素-碳反键sigma *轨道之间的相互作用的单电子图可作为模型来定性地合理化在许多这类系统中发现的趋势。但是,它必须带有一些怀疑态度。基于对称自适应扰动理论(SAPT)的详细分析表明,在每种情况下,感应力和色散力起主导作用,并有助于键合。氢键化合物涉及键合静电作用。仅在所涉及的硫族元素原子之一是硫或氧的情况下,以硫族元素-硫属元素相互作用为主的化合物才表现出由于静电相互作用而产生的键合。

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