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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >A combined spectroscopic and ab initio investigation of phenylacetylene-methylamine complex. observation of σ and π type hydrogen-bonded configurations and fluorescence quenching by weak C-H?N hydrogen bonding
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A combined spectroscopic and ab initio investigation of phenylacetylene-methylamine complex. observation of σ and π type hydrogen-bonded configurations and fluorescence quenching by weak C-H?N hydrogen bonding

机译:苯乙炔-甲胺络合物的光谱和从头算研究。和π型氢键构型的观察以及弱C-H?N氢键的荧光猝灭

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摘要

Two distinct isomers for the binary complex between phenylacetylene and methylamine were observed. The first complex is characterized by the presence of a C-H?N hydrogen bond between the acetylenic C-H group and the N atom of methylamine. In the second complex the N-H group of methylamine interacts with the π electron density of the benzene ring accompanied by a peripheral interaction between the methyl C-H group and the π electron density of the C≡C bond. Stabilization energies and Gibbs free energies at the complete basis set (CBS) limit of the coupled cluster theory with single, double, and perturbative triple excitations [CCSD(T)] suggest that while the C-H?N hydrogen bonded complex is the global minimum, the N-H?π hydrogen bonded complex is a high energy local minimum. The formation of the N-H?π complex could be related to kinetic trapping or higher accessibility. Comparison of the laser induced fluorescence (LIF) excitation and the one-color-resonant two-photon ionization (1C-R2PI) spectra suggests that formation of C-H?N hydrogen bonding leads to fluorescence quenching in phenylacetylene, most probably due to dipolar coupling in the excited state. The binary complex between the phenylacetylene and methylamine shows interesting isomer-dependent fluorescent properties.
机译:观察到苯乙炔和甲胺之间的二元配合物有两个不同的异构体。第一配合物的特征在于在炔属C-H基团和甲胺的N原子之间存在C-H 3 N氢键。在第二种络合物中,甲胺的N-H基团与苯环的π电子密度相互作用,并伴随着甲基C-H基团与C≡C键的π电子密度之间的周边相互作用。具有单,双和扰动三重激发[CCSD(T)]的耦合簇理论的完整基集(CBS)极限的稳定能和吉布斯自由能[CCSD(T)]表明,尽管CH?N氢键配合物是全局最小值, NH 3π氢键配合物是高能局部最小值。 N-H 2π配合物的形成可能与动力学俘获或更高的可及性有关。激光诱导的荧光(LIF)激发和单色双光子电离(1C-R2PI)光谱的比较表明,CH?N氢键的形成导致苯乙炔中的荧光猝灭,这很可能是由于兴奋的状态。苯乙炔和甲胺之间的二元络合物显示出有趣的异构体依赖性荧光性质。

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