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Unraveling Ultrafast Dynamics in Photoexcited Aniline

机译:揭示光激发苯胺中的超快动力学

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摘要

A combination of ultrafast time-resolved velocity map imaging (TR-VMI) methods and complete active space self-consistent field (CASSCF) ab initio calculations are implemented to investigate the electronic excited-state dynamics in aniline (aminobenzene), with a perspective for modeling ~1πσ* mediated dynamics along the amino moiety in the purine derived DNA bases. This synergy between experiment and theory has enabled a comprehensive picture of the photochemical pathways/conical intersections (CIs), which govern the dynamics in aniline, to be established over a wide range of excitation wavelengths. TR-VMI studies following excitation to the lowest-lying ~1ππ~* state (~1ππ~*) with a broadband femtosecond laser pulse, centered at wavelengths longer than 250 nm (4.97 eV), do not generate any measurable signature for ~1πσ* driven N-H bond fission on the amino group. Between wavelengths of 250 and >240 nm (<5.17 eV), coupling from 1 ~1ππ~* onto the ~1πσ~* state at a 1 ~1ππ*/~1πσ~* CI facilitates ultrafast nonadiabatic N-H bond fission through a ~1πσ~*/S_0 CI in <1 ps, a notion supported by CASSCF results. For excitation to the higher lying 2 ~1ππ* state, calculations reveal a near barrierless pathway for CI coupling between the 2~1 ~1ππ~* and 1 ~1ππ~* states, enabling the excited-state population to evolve through a rapid sequential 2 ~1ππ* → 1 ~1ππ* → ~1πσ* -* N-H fission mechanism, which we observe to take place in 155 ± 30 fs at 240 nm. We also postulate that an analogous cascade of CI couplings facilitates N-H bond scission along the ~1πσ* state in 170 ± 20 fs, following 200 nm (6.21 eV) excitation to the 3 ~1πσ* surface. Particularly illuminating is the fact that a number of the CASSCF calculated CI geometries in aniline bear an exceptional resemblance with previously calculated CIs and potential energy profiles along the amino moiety in guanine, strongly suggesting that the results here may act as an excellent grounding for better understanding ~1πσ* driven dynamics in this ubiquitous genetic building block.
机译:结合超快时间分辨速度图成像(TR-VMI)方法和完整的活性空间自洽场(CASSCF)从头计算,可以研究苯胺(氨基苯)中的电子激发态动力学,并展望在嘌呤衍生的DNA碱基中沿氨基部分模拟〜1πσ*介导的动力学。实验与理论之间的这种协同作用使人们能够在宽泛的激发波长范围内全面掌握控制苯胺动力学的光化学途径/圆锥交叉点(CI)。 TR-VMI研究在宽带飞秒激光脉冲激发到最低波长〜1ππ〜*状态(〜1ππ〜*)之后,中心波长大于250 nm(4.97 eV),对于〜1πσ不会产生任何可测量的信号*驱动氨基上的NH键裂变。在250到> 240 nm(<5.17 eV)的波长之间,以1〜1ππ* /〜1πσ〜* CI从1〜1ππ〜*耦合到〜1πσ〜*状态有助于通过〜1πσ的超快非绝热NH键裂变〜* / S_0 CI以<1 ps为单位,得出CASSCF支持的概念。对于激发到较高的2〜1ππ*状态,计算揭示了2〜1〜1ππ〜*和1〜1ππ〜*状态之间CI耦合的无障碍途径,从而使激发态种群能够通过快速序列演化2〜1ππ*→1〜1ππ*→〜1πσ*-* NH裂变机制,我们观察到发生在155±30 fs于240 nm。我们还假定类似的CI耦合级联在200 nm(6.21 eV)激发到3〜1πσ*表面之后,在170±20 fs内沿着〜1πσ*状态促进N-H键断裂。特别令人启发的事实是,许多CASSCF计算得出的苯胺中CI几何形状与先前计算出的CIs和沿着鸟嘌呤氨基部分的势能图谱非常相似,强烈暗示这里的结果可以作为更好理解的良好基础。在这个无处不在的遗传构件中,〜1πσ*驱动了动力学。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2012年第30期|p.12578-12589|共12页
  • 作者单位

    Department of Chemistry, University of Warwick, Library Road, Coventry, CV4 7AL, United Kingdom;

    Department of Chemistry, University of Warwick, Library Road, Coventry, CV4 7AL, United Kingdom;

    Department of Chemistry, University of Warwick, Library Road, Coventry, CV4 7AL, United Kingdom;

    Department of Physics and Astronomy, University of Georgia, Athens, Georgia 30602, United States;

    Institute of Chemical Sciences, Heriot-Watt University, Edinburgh, EH14 4AS, United Kingdom;

    Department of Chemistry, University of Warwick, Library Road, Coventry, CV4 7AL, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 03:13:35

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