Department of Chemistry, University of California, Irvine, California 92697-2025, United States.
Convergence Research Center for Energy and Environmental Sciences, Sungkyunkwan University, Suwon 16419, Korea.
J Chem Theory Comput. 2022 May 10;18(5):3075-3088. doi: 10.1021/acs.jctc.2c00064. Epub 2022 Apr 27.
We theoretically monitor the photoinduced ππ* → π* internal conversion process in 4-thiouracil (4TU), triggered by an optical pump. The element-sensitive spectroscopic signatures are recorded by a resonant X-ray probe tuned to the sulfur, oxygen, or nitrogen K-edge. We employ high-level electronic structure methods optimized for core-excited electronic structure calculation combined with quantum nuclear wavepacket dynamics computed on two relevant nuclear modes, fully accounting for their quantum nature of nuclear motions. We critically discuss the capabilities and limitations of the resonant technique. For sulfur and nitrogen, we document a pre-edge spectral window free from ground-state background and rich with ππ* and π* absorption features. The lowest sulfur K-edge shows strong absorption for both ππ* and π*. In the lowest nitrogen K-edge window, we resolve a state-specific fingerprint of the ππ* and an approximate timing of the conical intersection via its depletion. A spectral signature of the π* transition, not accessible by UV-vis spectroscopy, is identified. The oxygen K-edge is not sensitive to molecular deformations and gives steady transient absorption features without spectral dynamics. The ππ*/π* coherence information is masked by more intense contributions from populations. Altogether, element-specific time-resolved resonant X-ray spectroscopy provides a detailed picture of the electronic excited-state dynamics and therefore a sensitive window into the photophysics of thiobases.
我们从理论上监测了 4-硫尿嘧啶(4TU)中由光泵触发的ππ*→π内转换过程。通过调谐到硫、氧或氮 K 边的共振 X 射线探针记录元素敏感的光谱特征。我们采用了针对核心激发电子结构计算优化的高精度电子结构方法,并结合在两个相关核模式上计算的量子核波包动力学,充分考虑了其核运动的量子性质。我们批判性地讨论了共振技术的能力和局限性。对于硫和氮,我们记录了一个没有基态背景的预边光谱窗口,其中包含丰富的ππ和π吸收特征。最低的硫 K 边对ππ和π都表现出强烈的吸收。在最低的氮 K 边窗口中,我们通过其消耗确定了ππ的特定状态指纹和锥形交叉的近似时间。通过 UV-vis 光谱无法获得的π跃迁的光谱特征被识别出来。氧 K 边对分子变形不敏感,并且在没有光谱动力学的情况下给出稳定的瞬态吸收特征。ππ/π*相干信息被来自于群体的更强烈的贡献所掩盖。总的来说,元素特异性的时间分辨共振 X 射线光谱提供了电子激发态动力学的详细图像,因此是研究硫碱基光物理的一个敏感窗口。