Ultrafast excited-state dynamics of Luteins in the major light-harvesting complex LHCII

离域电子 化学物理 激发态 二面角 激发 表面跳跃 超短脉冲 分子物理学 激子 分子动力学 化学 密度泛函理论 物理 原子物理学 计算化学 分子 量子力学 激光器 氢键
作者
Laura Pedraza‐González,Davide Accomasso,Lorenzo Cupellini,Giovanni Granucci,Benedetta Mennucci
出处
期刊:Photochemical and Photobiological Sciences [Springer Science+Business Media]
卷期号:23 (2): 303-314 被引量:6
标识
DOI:10.1007/s43630-023-00518-x
摘要

Abstract Carotenoid pigments are known to present a functional versatility when bound to light-harvesting complexes. This versatility originates from a strong correlation between a complex electronic structure and a flexible geometry that is easily tunable by the surrounding protein environment. Here, we investigated how the different L1 and L2 sites of the major trimeric light-harvesting complex (LHCII) of green plants tune the electronic structure of the two embedded luteins, and how this reflects on their ultrafast dynamics upon excitation. By combining molecular dynamics and quantum mechanics/molecular mechanics calculations, we found that the two luteins feature a different conformation around the second dihedral angle in the lumenal side. The s -cis preference of the lutein in site L2 allows for a more planar geometry of the $$\pi$$ π -conjugated backbone, which results in an increased degree of delocalization and a reduced excitation energy, explaining the experimentally observed red shift. Despite these remarkable differences, according to surface hopping simulations the two luteins present analogous ultrafast dynamics upon excitation: the bright $$S_2$$ S 2 state quickly decays (in $$\sim$$ 50 fs) to the dark intermediate $$S_x$$ S x , eventually ending up in the $$S_1$$ S 1 state. Furthermore, by employing two different theoretical approaches (i.e., Förster theory and an excitonic version of surface hopping), we investigated the experimentally debated energy transfer between the two luteins. With both approaches, no evident energy transfer was observed in the ultrafast timescale. Graphical abstract
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