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首页> 外文期刊>Journal of Molecular Structure. Theochem: Applications of Theoretical Chemistry to Organic, Inorganic and Biological Problems >Theoretical study of tautomerization and isomerization of methylamino- and phenylamino-substituted cyclic azaphospholines, oxaphospholines and thiaphospholines in gas and aqueous phases
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Theoretical study of tautomerization and isomerization of methylamino- and phenylamino-substituted cyclic azaphospholines, oxaphospholines and thiaphospholines in gas and aqueous phases

机译:气相和水相中甲基氨基和苯基氨基取代的环氮杂磷,氧杂磷和硫杂磷的互变异构化和异构化的理论研究

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摘要

Results of B3LYP/6-31+G(d,p) calculations are reported. Special emphasis is put on the effect of the environment on relative stability and structures of different isomers and tautomers of methylamino- and phenylamino-substituted cyclic azaphospholine, oxaphospholine and thiaphospholine in gas and aqueous phases. In the gas phase, the imino forms are found to be the most stable species for the cyclic azaphospholines and thiaphospholines, whereas for oxaphospholines, the amino species are predicted to be more stable. The calculations in the aqueous media were done by considering two different models, i.e., the PCM-SCRF and the Microsolvated/SCRF model. It is found that solvation shifts the stability towards the amino forms, except for the phenyl-substituted cyclic azaphospholine and thiaphospholine, for which the imino forms are more stable in solution. The molecular geometries change only little when going from the gas phase to the aqueous phase. The stability in gas phase and in PCM-SCRF is attributed to the presence of intramolecular hydrogen bonding. In the Microsolvated/SCRF model, the presence of intermolecular hydrogen bonds affects the relative stability of tautomers and isomers.
机译:报告了B3LYP / 6-31 + G(d,p)的计算结果。特别强调了环境对气相和水相中甲基氨基和苯基氨基取代的环氮杂磷,氧杂磷和硫杂磷的不同异构体和互变异构体的相对稳定性和结构的影响。在气相中,发现亚氨基形式是环状氮杂磷和硫代磷啉最稳定的物种,而对于草酰磷,则认为氨基物种更稳定。在水性介质中的计算是通过考虑两种不同的模型进行的,即PCM-SCRF和微溶剂化/ SCRF模型。发现溶剂化将稳定性朝着氨基形式转移,除了苯基取代的环状氮杂磷酸和硫代磷酸酯,其亚氨基形式在溶液中更稳定。从气相到水相时,分子的几何形状变化很小。气相和PCM-SCRF中的稳定性归因于分子内氢键的存在。在微溶剂化/ SCRF模型中,分子间氢键的存在影响互变异构体和异构体的相对稳定性。

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