一种具有成本效益的计算策略用于第二代光驱动分子旋转电机的电子布局表征

IF 3.4 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Journal of Computational Chemistry Pub Date : 2025-01-11 DOI:10.1002/jcc.70023
Raoul Carfora, Federico Coppola, Paola Cimino, Alessio Petrone, Nadia Rega
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引用次数: 0

摘要

光驱动分子旋转马达是一种纳米机器,能够将光转化为单向运动。为了更好地响应光刺激,已经开发了几种类型的分子马达,为开发从纳米医学到机器人技术的智能材料开辟了新的途径。它们在各个学科的科学研究中具有重要意义,但光激发后立即对潜在的超快光物理的详细理解,即Franck-Condon区域表征,尚未完全实现。为了达到这个目的,首先需要依赖于系统在这个势能区域的从头算水平上的准确描述,然后再进行任何进一步的步骤,即动力学。因此,我们提出了一项广泛的研究,旨在准确描述frank - condon区分子转子的低洼电子态(电子布局)的电子结构,它属于一类过度拥挤的烯烃:9‐(2‐甲基‐2,3‐二氢‐1H‐环戊[a]萘‐1‐乙基)‐9H‐芴。选择这个系统是因为它的光物理非常有趣,可以更广泛地理解用作分子转子的类似化合物,其中可以找到低洼的电子态(其能量相互作用在动力学中至关重要),并且不同取代基的存在可以调节HOMO - LUMO间隙。为此,我们在时间依赖的密度泛函理论框架内采用了不同的理论水平,采用非常精确的Hartree-Fock后方法进行了仔细的比较,并描述了光循环中涉及的不同构象。详细分析了不同功能、基集、环境描述以及色散校正对电子布局的影响。特别地,这里对溶剂效应进行了深入的仔细处理,通过测试线性响应和状态特定形式,展示了隐式溶剂描述如何能够准确地描述frank - condon区域的激发态。作为主要结果,我们选择了两个具有成本效益(准确但相对便宜)的理论水平来描述基态和激发态,并且我们还通过对拉曼光谱中活跃的正常振动模式的频率分析验证了选择这些不同水平的理论如何影响势的曲率。这一理论研究是对光异构化过程中溶液中激发态早期阶段的可行表征的关键一步,其中多个电子态可能在光辐射上填充,从而导致未来对时间分辨光谱的分子水平解释。
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A Cost-Effective Computational Strategy for the Electronic Layout Characterization of a Second Generation Light-Driven Molecular Rotary Motor in Solution

Light-driven molecular rotary motors are nanometric machines able to convert light into unidirectional motions. Several types of molecular motors have been developed to better respond to light stimuli, opening new avenues for developing smart materials ranging from nanomedicine to robotics. They have great importance in the scientific research across various disciplines, but a detailed comprehension of the underlying ultrafast photophysics immediately after photo-excitation, that is, Franck–Condon region characterization, is not fully achieved yet. For this aim, it is first required to rely on an accurate description at ab initio level of the system in this potential energy region before performing any further step, that is, dynamics. Thus, we present an extensive investigation aimed at accurately describing the electronic structure of low-lying electronic states (electronic layout) of a molecular rotor in the Franck–Condon region, belonging to the class of overcrowded alkenes: 9-(2-methyl-2,3-dihydro-1H-cyclopenta[a]naphthalen-1-ylidene)-9H-fluorene. This system was chosen since its photophysics is very interesting for a more general understanding of similar compounds used as molecular rotors, where low-lying electronic states can be found (whose energetic interplay is crucial in the dynamics) and where the presence of different substituents can tune the HOMO-LUMO gap. For this scope, we employed different theory levels within the time-dependent density functional theory framework, presenting also a careful comparison adopting very accurate post Hartree–Fock methods and characterizing also the different conformations involved in the photocycle. Effects on the electronic layout of different functionals, basis sets, environment descriptions, and the role of the dispersion correction were all analyzed in detail. In particular, a careful treatment of the solvent effects was here considered in depth, showing how the implicit solvent description can be accurate for excited states in the Franck–Condon region by testing both linear-response and state-specific formalisms. As main results, we chose two cost-effective (accurate but relatively cheap) theory levels for the ground and excited state descriptions, and we also verified how choosing these different levels of theory can influence the curvature of the potential via a frequency analysis of the normal modes of vibrations active in the Raman spectrum. This theoretical survey is a crucial step towards a feasible characterization of the early stage of excited states in solution during photoisomerization processes wherein multiple electronic states might be populated upon the light radiation, leading to a future molecular-level interpretation of time-resolved spectroscopies.

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来源期刊
CiteScore
6.60
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3.30%
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247
审稿时长
1.7 months
期刊介绍: This distinguished journal publishes articles concerned with all aspects of computational chemistry: analytical, biological, inorganic, organic, physical, and materials. The Journal of Computational Chemistry presents original research, contemporary developments in theory and methodology, and state-of-the-art applications. Computational areas that are featured in the journal include ab initio and semiempirical quantum mechanics, density functional theory, molecular mechanics, molecular dynamics, statistical mechanics, cheminformatics, biomolecular structure prediction, molecular design, and bioinformatics.
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