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氟化苯的光物理。 II. 量子动力学。

Photophysics of fluorinated benzene. II. Quantum dynamics.

机构信息

School of Chemistry, University of Hyderabad, Hyderabad 500046, India.

出版信息

J Chem Phys. 2010 Aug 28;133(8):084305. doi: 10.1063/1.3465557.

Abstract

Nuclear dynamics in the coupled electronic states of mono-, di-(ortho and meta), and pentafluorobenzene molecules is investigated here. Attempts are specifically made to understand the complexity and broadening of the recorded gas phase electronic absorption spectra of these molecules. Justification is also provided for the low quantum yield of fluorescence emission with increasing number of fluorine substitutions. The nuclear dynamics is simulated from first principles both by time-independent and time-dependent quantum mechanical methods. Potential energy surfaces of the low-lying excited electronic states of these molecules constructed in Paper I [Mondal and Mahapatra, J. Chem. Phys. 133, 084304 (2010)] are employed for the purpose. Theoretical results presented in this paper are compared with the available experimental data and the agreement between the two is found to be excellent. While structured electronic absorption bands are observed for the S(1) state of mono- and difluorobenzene molecules, the same for the pentafluorobenzene is broad and structureless. Occurrence of S(1)-S(2) conical intersections in pentafluorobenzene leads to a nonradiative internal conversion of the S(1) state in approximately 165 fs and contributes to the broadening of the S(1)<--S(0) absorption band and a biexponential decay of its fluorescence emission.

摘要

本文研究了单、二(邻位和间位)和五氟苯分子的耦合电子态中的核动力学。特别尝试理解这些分子的气相电子吸收光谱记录的复杂性和展宽。还为随着氟取代数的增加荧光发射量子产率降低提供了理由。核动力学通过时间无关和时间相关的量子力学方法从第一性原理进行模拟。在 Paper I [Mondal 和 Mahapatra, J. Chem. Phys. 133, 084304 (2010)] 中构建的这些分子的低能激发电子态的势能面用于此目的。本文提出的理论结果与可用的实验数据进行了比较,两者之间的一致性非常好。虽然观察到单氟和二氟苯分子的 S(1)态的结构化电子吸收带,但对于五氟苯,相同的吸收带是宽的且无结构。在五氟苯中发生 S(1)-S(2) 锥形交叉导致 S(1)态的非辐射内部转换,大约在 165 fs 内发生,并导致 S(1)<--S(0)吸收带的展宽和其荧光发射的双指数衰减。

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