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首页> 外文期刊>Journal of the American Chemical Society >UV-Photoelectron Spectroscopy of 1,2- and 1,3-Azaborines: A Combined Experimental and Computational Electronic Structure Analysis
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UV-Photoelectron Spectroscopy of 1,2- and 1,3-Azaborines: A Combined Experimental and Computational Electronic Structure Analysis

机译:1,2-和1,3-氮杂硼烷的紫外光电子能谱:结合实验和计算电子结构分析

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摘要

We present a comprehensive electronic structure analysis of structurally simple BN heterocycles using a combined UV-photoelectron spectroscopy (UV-PES)/computational chemistry approach. Gas-phase He I photoelectron spectra of 1,2-dihydro-1,2-azaborine 1, N-Me-1,2-BN-toluene 2, and N-Me-1,3-BN-toluene 3 have been recorded, assessed by density functional theory calculations, and compared with their corresponding carbonaceous analogues benzene and toluene. The first ionization energies of these BN heterocycles are in the order N-Me-l,3-BN-toluene 3 (8.0 eV) < N-Me-1,2-BN-toluene 2 (8.45 eV) < 1,2-dihydro-l,2-azaborine 1 (8.6 eV) < toluene (8.83 eV) < benzene (9.25 eV). The computationally determined molecular dipole moments are in the order 3 (4.577 D) > 2 (2.209 D) > 1 (2.154 D) > toluene (0.349 D) > benzene (0 D) and are consistent with experimental observations. The λ_(max) in the UV-vis absorption spectra are in the order 3 (297 run) > 2 (278 nm) > 1 (269 run) > toluene (262 nm) > benzene (255 nm). We also establish that the measured anodic peak potentials and electrophilic aromatic substitution (EAS) reactivity of BN heterocycles 1-3 are consistent with the electronic structure description determined by the combined UV-PES/computational chemistry approach.
机译:我们提供了使用组合的紫外光电子能谱(UV-PES)/计算化学方法对结构简单的BN杂环进行全面的电子结构分析。记录了1,2-二氢-1,2-氮杂灵1,N-Me-1,2-BN-甲苯2和N-Me-1,3-BN-甲苯3的气相He I光电子光谱,通过密度泛函理论计算进行评估,并与相应的碳质类似物苯和甲苯进行比较。这些BN杂环的第一个电离能的顺序为N-Me-1,3-BN-甲苯3(8.0 eV) 2(2.209 D)> 1(2.154 D)>甲苯(0.349 D)>苯(0 D),并且与实验观察结果一致。紫外可见吸收光谱中的λ_(max)依次为3(297行程)> 2(278 nm)> 1(269行程)>甲苯(262 nm)>苯(255 nm)。我们还建立了BN杂环1-3的测量的阳极峰电位和亲电芳族取代(EAS)反应性与通过结合的UV-PES /计算化学方法确定的电子结构描述一致。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第24期|p.10279-10285|共7页
  • 作者单位

    Institut des Sciences Analytiques et de Physico-Chimie pour l'Environnement et les Materiaux, UMR CNRS 5254, Universite de Pau et des Pays de 1'Adour, Avenue de l'Universite, BP 1155, 64 013 Pau Cedex, France;

    Department of Chemistry, University of Oregon, Eugene, Oregon 97403, United States;

    Department of Chemistry, University of Oregon, Eugene, Oregon 97403, United States;

    Institut des Sciences Analytiques et de Physico-Chimie pour l'Environnement et les Materiaux, UMR CNRS 5254, Universite de Pau et des Pays de 1'Adour, Avenue de l'Universite, BP 1155, 64 013 Pau Cedex, France;

    Department of Chemistry, University of Oregon, Eugene, Oregon 97403, United States;

    Institut des Sciences Analytiques et de Physico-Chimie pour l'Environnement et les Materiaux, UMR CNRS 5254, Universite de Pau et des Pays de 1'Adour, Avenue de l'Universite, BP 1155, 64 013 Pau Cedex, France;

    Institut des Sciences Analytiques et de Physico-Chimie pour l'Environnement et les Materiaux, UMR CNRS 5254, Universite de Pau et des Pays de 1'Adour, Avenue de l'Universite, BP 1155, 64 013 Pau Cedex, France;

    Institut des Sciences Analytiques et de Physico-Chimie pour l'Environnement et les Materiaux, UMR CNRS 5254, Universite de Pau et des Pays de 1'Adour, Avenue de l'Universite, BP 1155, 64 013 Pau Cedex, France;

    Department of Chemistry, University of Oregon, Eugene, Oregon 97403, United States;

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