Study of Photoselectivity in Linear Conjugated Chromophores Using the XMS-CASPT2 Method.

IF 3.7 Q2 CHEMISTRY, PHYSICAL ACS Physical Chemistry Au Pub Date : 2024-10-02 eCollection Date: 2024-11-27 DOI:10.1021/acsphyschemau.4c00065
Saumik Sen, Xavier Deupi
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Abstract

Photoisomerization, the structural alteration of molecules upon absorption of light, is crucial for the function of biological chromophores such as retinal in opsins, proteins vital for vision and other light-sensitive processes. The intrinsic selectivity of this isomerization process (i.e., which double bond in the chromophore is isomerized) is governed by both the inherent properties of the chromophore and its surrounding environment. In this study, we employ the extended multistate complete active space second-order perturbation theory (XMS-CASPT2) method to investigate photoisomerization selectivity in linear conjugated chromophores, focusing on two simple molecular models resembling retinal. By analyzing electronic energies, intramolecular charge separation, and conical intersection topographies in the gas phase, we show that the photoproduct formed by rotation around the double bond near the Schiff base is energetically favored. The topographic differences at the conical intersections leading to different photoproducts reveal differences in photodynamics. In multiphoton excitation, the primary photoproduct typically reverts to the initial configuration rather than rotating around a different double bond. Our study offers new insights into the photodynamics of photoisomerizing double bonds in π-conjugated chromophores. We anticipate that our findings will provide valuable perspectives for advancing the understanding of biological chromophores and for designing efficient photochemical switches with applications in molecular electronics and phototherapy.

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用XMS-CASPT2方法研究线性共轭发色团的光选择性。
光异构化,即吸收光后分子结构的改变,对于生物发色团(如视蛋白中的视网膜)的功能至关重要,视蛋白对视觉和其他光敏过程至关重要。这种异构化过程的内在选择性(即,生色团中的哪个双键被异构化)是由生色团的固有性质及其周围环境共同决定的。在这项研究中,我们采用扩展多态完全活性空间二阶摄动理论(XMS-CASPT2)方法研究了线性共轭发色团的光异构选择性,重点研究了两种类似视网膜的简单分子模型。通过分析电子能、分子内电荷分离和气相的锥形交叉形貌,我们发现围绕希夫碱附近的双键旋转形成的光产物在能量上是有利的。导致不同光产物的锥形交点的地形差异揭示了光动力学的差异。在多光子激发中,初级光产物通常会恢复到初始构型,而不是围绕不同的双键旋转。我们的研究为π共轭发色团光异构双键的光动力学提供了新的见解。我们预计我们的发现将为推进对生物发色团的理解和设计有效的光化学开关在分子电子学和光疗中的应用提供有价值的观点。
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期刊介绍: ACS Physical Chemistry Au is an open access journal which publishes original fundamental and applied research on all aspects of physical chemistry. The journal publishes new and original experimental computational and theoretical research of interest to physical chemists biophysical chemists chemical physicists physicists material scientists and engineers. An essential criterion for acceptance is that the manuscript provides new physical insight or develops new tools and methods of general interest. Some major topical areas include:Molecules Clusters and Aerosols; Biophysics Biomaterials Liquids and Soft Matter; Energy Materials and Catalysis
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