首页> 外文期刊>Computational & theoretical chemistry >Theoretical investigation of thione-thiol tautomerism, intermolecular double proton transfer reaction and hydrogen bonding interactions in 4-ethyl-5-(2-hydroxyphenyl)-2H-1,2,4-triazole-3(4H)-thione
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Theoretical investigation of thione-thiol tautomerism, intermolecular double proton transfer reaction and hydrogen bonding interactions in 4-ethyl-5-(2-hydroxyphenyl)-2H-1,2,4-triazole-3(4H)-thione

机译:在4-乙基-5-(2-羟苯基)-2H-1,2,4-三唑-3(4H)-硫酮中硫酮-硫醇互变异构,分子间双质子转移反应和氢键相互作用的理论研究

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The thione-thiol tautomerism and intermolecular double proton transfer reaction for the title triazole compound were studied at the B3LYP level of theory using 6-311++G(d,p) basis function. The solvent effect on the proton transfer reactions was investigated in three solvents (chloroform, methanol and water) using the polarizable continuum model (PCM) approximation (direct solvent effect) and solvent-assisted mechanism. The results show that the thione-enol tautomer is the most stable isomer among the four possible tautomeric forms of the compound both in the gas phase and in solution phase. A very high tautomeric energy barrier is found for the thione-thiol tautomerism between the enol and keto forms of the compound both in the gas phase and in solution phase, indicating a quite disfavored process. The direct solvent effect is found to be sizable with increasing polarity of the solvents. Even though the presence of the solvent molecules significantly lowers the barrier of the proton transfer, it is not adequate for the reaction to occur. The energetic and thermodynamic parameters of the double proton transfer process show that the double proton exchange from thione-enol dimer to thiol-enol dimer is thermodynamically unfavored. However, the exchange from thiol-enol dimer to thione-enol dimer for the gas phase and methanol phase seems to be feasible with a low barrier height, and is supported by negative values in enthalpy and free energy changes. The intermolecular hydrogen bonding interactions were analyzed in the gas phase regarding their geometries and energies. The stability of the H-bonds comes in the order of O1. H1?N1. >. S1. H2?N2. >. N2. H2?S1. >. N2. H2?N1.
机译:使用6-311 ++ G(d,p)基函数在理论的B3LYP水平上研究了标题三唑化合物的硫酮-硫醇互变异构现象和分子间双质子转移反应。使用可极化连续体模型(PCM)近似(直接溶剂效应)和溶剂辅助机理,研究了三种溶剂(氯仿,甲醇和水)中溶剂对质子转移反应的影响。结果表明,无论在气相还是在溶液相中,硫酮-烯醇互变异构体都是该化合物四种可能的互变异构形式中最稳定的异构体。对于在气相和在溶液相中的化合物的烯醇和酮形式之间的硫酮-硫醇互变异构现象,发现非常高的互变异构能垒,表明该方法非常不利。发现随着溶剂极性的增加,直接溶剂作用相当大。即使溶剂分子的存在显着降低了质子转移的障碍,但不足以使反应发生。双质子转移过程的能量和热力学参数表明,从硫酮-烯醇二聚体到硫醇-烯醇二聚体的双质子交换在热力学上是不利的。然而,从气相和甲醇相的硫醇-烯醇二聚体到硫烯-烯醇二聚体的交换在低阻挡高度的情况下似乎是可行的,并且得到焓和自由能变化的负值的支持。在气相中分析了分子间氢键相互作用的几何形状和能量。 H键的稳定性大约为O1。 H1?N1。 >。 S1 H2→N2。 >。 N2 H2?S1。 >。 N2 H2→N1。

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