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Perspectives in Dye Chemistry: A Rational Approach toward Functional Materials by Understanding the Aggregate State

机译:染料化学的透视:通过了解汇总状态,对功能材料的合理方法

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摘要

The past 20 years have witnessed a renaissance of dye chemistry, moving from traditional colorant research toward functional materials. Different from traditional colorant research, the properties of functional materials are governed extensively by intermolecular interactions, thereby entailing significant limitations to the classical approach based on molecular structure-molecular property (color, emission, redox properties, etc.) relationships for the respective dye molecules. However, as discussed in this Perspective, such an approach can be pursued for dye aggregates, and in many cases already well-tailored dimers are sufficient to understand the influence of supramolecular organization on the functional properties of ground and photoexcited states. Illustrative examples will be given for exciton coupling and charge-transfer coupling and how these properties relate to desirable functions such as fluorescence, symmetry-breaking charge separation, and singlet fission in molecular aggregates. While the progress in this research so far mostly originated from studies on well-defined folded and self-assembled structures composed of only two dye molecules, future work will have to advance toward larger oligomers of specific size and geometry. Furthermore, future experimental studies should be guided to a larger extent by theoretical predictions that may be supported by machine learning algorithms and new concepts from artificial intelligence. Beyond already pursued calculations of potential energy landscapes, we suggest the development of theoretical approaches that identify the most desirable dye aggregate structures for a particular property on functional energy landscapes.
机译:近20年来见证了染料化学的复兴,从对功能材料传统的着色剂的研究活动。从传统的着色剂的研究不同,功能性材料的性质是通过分子间相互作用广泛支配,从而基于分子结构的分子特性(颜色,发射,氧化还原特性等)将会导致显著限制传统方法针对各个染料分子的关系。然而,如在此讨论的透视,这样的方法可以追求染料聚集体,并且在许多情况下已经公定制二聚体足以理解的超分子组织上的地面和光激发状态下的功能性质的影响。说明性的实例将给出对于激子耦合和电荷转移耦合以及这些特性涉及期望的功能,诸如荧光,对称破裂电荷分离,并且在分子聚集体单峰裂变。虽然这项研究迄今取得的进展主要是源于研究上只有两种染料分子组成的明确定义折叠和自组装结构,今后的工作将不得不提前向更大的具体尺寸和几何形状的低聚物。此外,未来的实验研究要引导通过理论预测在更大程度上可以通过机器学习算法和人工智能的新概念的支持。除了势能景观已经推行的计算,我们建议的,可以识别功能性能源的风景特定属性最可取的染料聚集体结构的理论方法的发展。

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  • 来源
    《Journal of the American Chemical Society》 |2021年第12期|4500-4518|共19页
  • 作者单位

    Center for Nanosystems Chemistry Universitaet Wuerzburg 97074 Wuerzburg Germany Institut fuer Organische Chemie Universitaet Wuerzburg 97074 Wuerzburg Germany;

    Institut fuer Organische Chemie Universitaet Wuerzburg 97074 Wuerzburg Germany;

    Center for Nanosystems Chemistry Universitaet Wuerzburg 97074 Wuerzburg Germany;

    Center for Nanosystems Chemistry Universitaet Wuerzburg 97074 Wuerzburg Germany Institut fuer Organische Chemie Universitaet Wuerzburg 97074 Wuerzburg Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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