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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Theoretical Design of Photofunctional Molecular Aggregates for Optical Properties: An Inverse Design Approach
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Theoretical Design of Photofunctional Molecular Aggregates for Optical Properties: An Inverse Design Approach

机译:光学性能分子聚集体的理论设计:逆设计方法

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Properties of molecular aggregates are defined by their composition and structure. It is becoming possible to control these elements via advances in experimental techniques, and therefore the design guidelines are demanded for developing efficient optical materials. Here we propose a theoretical design approach for photofunctional molecular aggregates using an inverse design framework, the linear combination of atomic potentials (LCAP). The Frenkel exciton model coupled with the LCAP is introduced for designing systems with desired optical properties by gradient-guided optimization searches in terms of constituent molecules in the chemical space of molecular aggregates. We have applied this approach to design one-dimensional molecular aggregates having locally maximized absorption and/or circular dichroism (CD) intensities as an example. By exploring a small fraction of the vast chemical space of 10(26) possible systems varying in composition and structure, we successfully obtained the optimal aggregates. The optimal structure-photofunction relationships were investigated from the designed systems. We clarified that the maximum CD of the designed system is nonlinearly enhanced depending on the number of constituent molecules. Furthermore, we analyzed the optical spectra and revealed that the potential of the photofunctions is sufficiently exploited. The present method is useful to design photofunctional molecular aggregates and accelerate optical material discoveries.
机译:分子聚集体的性质由它们的组成和结构定义。通过实验技术的进步,可以控制这些元件,因此需要开发有效的光学材料的设计指导。在这里,我们提出了一种使用逆设计框架的光功能分子聚集体的理论设计方法,原子电位的线性组合(LCAP)。引入与LCAP耦合的Frenkel激子模型,用于通过分子聚集体的化学空间中的构成分子来设计具有所需光学性质的系统,该系统通过梯度引导的优化搜索。我们已经应用了这种方法来设计具有局部最大化的吸收和/或圆形二色性(CD)强度的一维分子聚集体作为示例。通过探索在组成和结构中不同的10(26)个可能的系统的巨大化学空间的一小部分,我们成功地获得了最佳聚集体。从设计的系统中研究了最佳结构 - 光电功能。我们澄清说,根据构成分子的数量,设计系统的最大CD是非线性增强的。此外,我们分析了光学光谱,并揭示了光障碍的电位被充分利用。本方法可用于设计光共官能分子聚集体和加速光学材料发现。

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