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β-葡萄糖的电子激发态和光化学反应机制。

Electronically excited states and photochemical reaction mechanisms of β-glucose.

机构信息

Department of Chemistry, Technische Universität München, 85747 Garching, Germany.

出版信息

Phys Chem Chem Phys. 2014 Jan 7;16(1):38-47. doi: 10.1039/c3cp52359d.

DOI:10.1039/c3cp52359d
PMID:23959595
Abstract

Carbohydrates are important molecular components of living matter. While spectroscopic and computational studies have been performed on carbohydrates in the electronic ground state, the lack of a chromophore complicates the elucidation of the excited-state properties and the photochemistry of this class of compounds. Herein, we report on the first computational investigation of the singlet photochemistry of β-glucose. It is shown that low-lying singlet excited states are of nσ* nature. Our computations of the singlet vertical excitation energies predict absorption from 6.0 eV onward. Owing to a dense manifold of weakly-absorbing states, a sizable and broad absorption in the ultraviolet-C range arises. We have explored two types of photochemical reaction mechanisms: hydrogen-detachment processes for each of the five O-H groups and a C-O ring-opening process. Both types of reactions are driven by repulsive nσ* states that are readily accessible from the Franck-Condon region and lead to conical intersections in a barrierless fashion. We have optimized the geometries of the conical intersections involved in these photochemical processes and found that these intersections are located around 5.0 eV for the O-H hydrogen-detachment reactions and around 4.0 eV for the C-O ring-opening reaction. The energies of all conical intersections are well below the computed absorption edge. The calculations were performed using linear-response methods for the computation of the vertical excitation energies and multiconfigurational methods for the optimization of conical intersections and the computation of energy profiles.

摘要

碳水化合物是生命物质的重要分子组成部分。虽然已经对电子基态下的碳水化合物进行了光谱和计算研究,但由于缺乏生色团,这一化合物类别的激发态性质和光化学仍难以阐明。在此,我们首次报道了β-葡萄糖的单重态光化学的计算研究。结果表明,低能单重激发态具有 nσ性质。我们对单重垂直激发能的计算预测,吸收始于 6.0 eV 以上。由于弱吸收态的密集简并,在紫外线 C 范围内会出现相当大且宽的吸收。我们探索了两种光化学反应机制:每个 O-H 基团的氢脱离过程和 C-O 开环过程。这两种类型的反应都是由易于从 Franck-Condon 区域到达的排斥 nσ态驱动的,并且以无势垒的方式导致锥型交叉。我们已经优化了这些光化学过程中涉及的锥型交叉的几何形状,并发现这些交叉位于 O-H 氢脱离反应的 5.0 eV 左右,C-O 开环反应的 4.0 eV 左右。所有锥型交叉的能量都远低于计算的吸收边缘。计算使用线性响应方法计算垂直激发能,使用多组态方法优化锥型交叉和计算能量分布。

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