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通过第一性原理模拟和超快光谱解析二苯甲酮的单重激发态能级。

Resolving the Singlet Excited State Manifold of Benzophenone by First-Principles Simulations and Ultrafast Spectroscopy.

机构信息

Université de Lyon, École Normale Supérieure de Lyon, CNRS, Université Claude Bernard Lyon 1, Laboratoire de Chimie UMR 5182 , F-69342 , Lyon , France.

Université de Lorraine and CNRS, LPCT UMR 7019 , 54000 , Nancy , France.

出版信息

J Chem Theory Comput. 2018 May 8;14(5):2570-2585. doi: 10.1021/acs.jctc.7b01208. Epub 2018 Apr 11.

Abstract

Accurate characterization of the high-lying excited state manifolds of organic molecules is of fundamental importance for the interpretation of the rich response detected in time-resolved nonlinear electronic spectroscopies. Here, we have characterized the singlet excited state manifold of benzophenone (BP), a versatile organic photoinitiator and a well-known DNA photosensitizer. Benchmarks of various multiconfigurational/multireference (RASSCF/PT2) and time-dependent density functional theory (TD-DFT) approaches allowed assignments of experimental linear absorption signals of BP in the ultraviolet (UV) region, with unprecedented characterization of ground state absorptions in the far UV. Experimental transient absorption spectra obtained by UV-vis pump-probe spectroscopy at very short time delays are shown to be directly comparable to theoretical estimates of excited state absorptions (from the low-lying nπ* and ππ* singlet states) in the Franck-Condon region. Multireference computations provided reliable interpretation of the PP spectra, with TD-DFT results yielding a fair agreement as long as electronic transitions featuring double excitations contributions are not involved. These results lay the groundwork for further computational studies and interpretation of experimental nonlinear electronic spectra of benzophenone in more complex systems, such as BP/DNA adducts.

摘要

准确描述有机分子的高能激发态能级对于解释时间分辨非线性电子光谱中检测到的丰富响应至关重要。在这里,我们已经对苯甲酮 (BP) 的单重激发态能级进行了表征,BP 是一种多功能的有机光引发剂,也是一种众所周知的 DNA 光敏剂。各种多组态/多参考(RASSCF/PT2)和含时密度泛函理论(TD-DFT)方法的基准允许对 BP 在紫外(UV)区域的实验线性吸收信号进行分配,对远紫外区域的基态吸收进行了前所未有的表征。通过在非常短的时间延迟下进行紫外可见泵浦探针光谱法获得的实验瞬态吸收光谱被证明与在 Franck-Condon 区域的激发态吸收(来自低能的 nπ* 和 ππ* 单重态)的理论估计直接可比。多参考计算为 PP 光谱提供了可靠的解释,只要不涉及涉及双激发贡献的电子跃迁,TD-DFT 结果就可以得到很好的一致。这些结果为进一步研究苯甲酮在更复杂体系(如 BP/DNA 加合物)中的非线性电子光谱的计算研究和解释奠定了基础。

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