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Electron propagator theory study of N-/O-methylglycine conformers

机译:N- / O-甲基甘氨酸构象体的电子传播理论研究

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The low-lying conformers of N-/O-methylglycine are studied by ab initio calculations at the B3LYP, MP3, and MP4(SDQ) levels of theory with the aug-cc-pVDZ basis set. The conformers having the intramolecular hydrogen bonds N-(HO)-O-... = C or O-(HN)-N-... are more stable than the others. Vertical ionization energies for the valence molecular orbitals of each conformer predicted with the electron propagator theory in the partial third-order quasiparticle approximation are in good agreement with the experimental data available in the literatures. The relative energies of the conformers and comparison between the simulated and the experimental photoelectron spectra demonstrate that there are at least three and two conformers of N- and O-methylglycine, respectively, in the gas-phase experiments. The intramolecular hydrogen bonding O-(HN)-N-... effects on the molecular electronic structures are discussed for the glycine methyl derivatives, on the basis of the ab initio electronic structure calculations, natural orbital bond, and atoms-in-molecules analyses. The intramolecular hydrogen bonding O-(HN)-N-... interactions hardly affect the electronic structures of the O-NH2-CH2-C(=O)-O-CH3 and alpha-methylated NH2-CH2-C(CH3)OOH conformers, while the similar intramolecular interactions lead to the significantly lower-energy levels of the highest occupied molecular orbitals for the N-(CH3-NH-CH2-COOH) and beta-methylated (NH2-CH2-CH2-COOH) conformers. (c) 2005 American Institute of Physics.
机译:N- / O-甲基甘氨酸的低构型构象是通过从头算以aug-cc-pVDZ基础集在B3LYP,MP3和MP4(SDQ)的理论水平上进行研究的。具有分子内氢键N-(HO)-O -... = C或O-(HN)-N -...的构象比其他构象更稳定。用电子传播理论在部分三阶准粒子近似中预测的每个构象体的价原子轨道的垂直电离能与文献中的实验数据高度吻合。构象异构体的相对能量以及在模拟的和实验的光电子能谱之间的比较表明,在气相实验中,分别存在至少三个和两个构型的N-和O-甲基甘氨酸。基于从头算电子结构计算,自然轨道键和分子中原子的问题,讨论了甘氨酸甲基衍生物的分子内氢键O-(HN)-N -...对分子电子结构的影响分析。分子内氢键O-(HN)-N -...相互作用几乎不影响O-NH2-CH2-C(= O)-O-CH3和α-甲基化NH2-CH2-C(CH3)的电子结构OOH构象异构体,而相似的分子内相互作用导致N-(CH3-NH-CH2-COOH)和β-甲基化(NH2-CH2-CH2-COOH)构象异构体的最高占据分子轨道的能量水平明显降低。 (c)2005年美国物理研究所。

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