Publication | Open Access
MS-CASPT2 Studies on the Photophysics of Selenium-Substituted Guanine Nucleobase
30
Citations
55
References
2019
Year
The MS-CASPT2 method has been employed to optimize minimum-energy structures of 6-selenoguanine (6SeGua) and related two- and three-state intersection structures in and between the lowest five electronic states, i.e., S<sub>2</sub>(<sup>1</sup>ππ*), S<sub>1</sub>(<sup>1</sup> <i>n</i>π*), T<sub>2</sub>(<sup>3</sup> <i>n</i>π*), T<sub>1</sub>(<sup>3</sup>ππ*), and S<sub>0</sub>. In combination with MS-CASPT2 calculated linearly interpolated internal coordinate paths, the photophysical mechanism of 6SeGua has been proposed. The initially populated S<sub>2</sub>(<sup>1</sup>ππ*) state decays to either S<sub>1</sub>(<sup>1</sup> <i>n</i>π*) or T<sub>2</sub>(<sup>3</sup> <i>n</i>π*) states through a three-state S<sub>2</sub>/S<sub>1</sub>/T<sub>2</sub> intersection point. The large S<sub>2</sub>/T<sub>2</sub> spin-orbit coupling of 435 cm<sup>-1</sup>, according to the classical El-Sayed rule, benefits the S<sub>2</sub> → T<sub>2</sub> intersystem crossing process. The S<sub>1</sub>(<sup>1</sup> <i>n</i>π*) state that stems from the S<sub>2</sub> → S<sub>1</sub> internal conversion process at the S<sub>2</sub>/S<sub>1</sub>/T<sub>2</sub> intersection point can further jump to the T<sub>2</sub>(<sup>3</sup> <i>n</i>π*) state through the S<sub>1</sub> → T<sub>2</sub> intersystem crossing process. This process does not comply with the El-Sayed rule, but it is still related to a comparatively large spin-orbit coupling of 39 cm<sup>-1</sup> and is expected to occur relatively fast. Finally, the T<sub>2</sub>(<sup>3</sup> <i>n</i>π*) state, which is populated from the above S<sub>2</sub> → T<sub>2</sub> and S<sub>1</sub> → T<sub>2</sub> intersystem crossing processes, decays to the T<sub>1</sub>(<sup>3</sup>ππ*) state via an internal conversion process. Because there is merely a small energy barrier of 0.11 eV separating the T<sub>1</sub>(<sup>3</sup>ππ*) minimum and an energetically allowed two-state T<sub>1</sub>/S<sub>0</sub> intersection point, the T<sub>1</sub>(<sup>3</sup>ππ*) state still can decay to the S<sub>0</sub> state quickly, which is also enhanced by a large T<sub>1</sub>/S<sub>0</sub> spin-orbit coupling of 252 cm<sup>-1</sup>. Our proposed mechanism explains experimentally observed ultrafast intersystem crossing processes in 6SeGua and its 835-fold acceleration of the T<sub>1</sub> state decay to the S<sub>0</sub> state compared with 6tGua. Finally, we have found that the ground-state electronic structure of 6SeGua has more apparent multireference character.
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