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首页> 外文期刊>Journal of the American Chemical Society >Theoretical studies of quantum amplified isomerizations for imaging systems involving hexamethyl Dewar benzene and related systems
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Theoretical studies of quantum amplified isomerizations for imaging systems involving hexamethyl Dewar benzene and related systems

机译:涉及六甲基杜瓦苯及其相关系统的成像系统的量子放大异构化的理论研究

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The ring-opening reactions of the radical cations of hexamethyl Dewar benzene (1) and Dewar benzene have been studied using density functional theory (DFT) and complete active-space self-consistent field (CASSCF) calculations. Compound 1 is known to undergo photoinitiated ring opening by a radical cation chain mechanism, termed "quantum amplified isomerization" (QAI), which is due to the high quantum yield. Why QAI is efficient for 1 but not other reactions is explained computationally. Two radical cation minima of 1 and transition states located near avoided crossings are identified. The state crossings are characterized by conical intersections corresponding to degeneracy between doublet surfaces. Ring opening occurs by formation of the radical cation followed by a decrease in the flap dihedral angle. A rate-limiting C-s transition state leads to a second stable radical cation with an elongated transannular C-C bond and an increased flap dihedral. This structure proceeds through a conrotatory-like pathway of Cs symmetry to give the benzene radical cation. The role of electron transfer was investigated by evaluating oxidation of various systems using adiabatic ionization energies and electron affinities calculated from neutral and cation geometries. Electron-transfer theory was applied to 1 to investigate the limiting effects of back-electron transfer as it is related to the unusual stability of the two radical cations. Expected changes in optical properties between reactants and products of Dewar benzene compounds and other systems known to undergo QAI were characterized by computing frequency-dependent indices of refraction from isotropic polarizabilities. In particular, the reaction of 1 shows greater contrast in index of refraction than that of the Dewar benzene parent system.
机译:使用密度泛函理论(DFT)和完整的活性空间自洽场(CASSCF)计算方法研究了六甲基杜瓦苯(1)和杜瓦苯的自由基阳离子的开环反应。已知化合物1通过自由基阳离子链机理经历光引发的开环,该机理被称为“量子放大异构化”(QAI),这是由于高量子产率所致。通过计算解释了为什么QAI对1有效但对其他反应无效的原因。确定了两个自由基阳离子的最小值1和位于避免交叉附近的过渡态。状态相交的特征在于圆锥形相交,其对应于双峰表面之间的简并性。开环的发生是由于自由基阳离子的形成,接着是襟翼二面角的减小。限速C-s过渡态导致第二个稳定的自由基阳离子带有延长的跨环C-C键和增加的瓣二面角。这种结构通过具有Cs对称性的类似旋转的途径进行,从而产生苯自由基阳离子。通过使用绝热电离能和根据中性和阳离子几何结构计算出的电子亲和力评估各种系统的氧化,研究了电子转移的作用。将电子转移理论应用于1来研究反向电子转移的限制作用,因为它与两个自由基阳离子的异常稳定性有关。通过从各向同性极化率计算随频率变化的折射率,可以对杜瓦瓶中的苯和其他已知系统进行QAI的反应物与产物之间的光学性质的预期变化进行表征。特别地,1的反应显示出比杜瓦苯母体系统更大的折射率对比度。

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