首页> 外文期刊>Journal of chemical theory and computation: JCTC >The Frozen Cage Model: A Computationally Low-Cost Tool for Predicting the Exohedral Regioselectivity of Cycloaddition Reactions Involving Endohedral Metallofullerenes
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The Frozen Cage Model: A Computationally Low-Cost Tool for Predicting the Exohedral Regioselectivity of Cycloaddition Reactions Involving Endohedral Metallofullerenes

机译:冷冻笼模型:用于预测涉及内面金属富勒烯的环加成反应的面外区域选择性的计算性低成本工具

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Functionalization of endohedral metallofullerenes (EMFs) is an active line of research that is important for obtaining nanomaterials with unique properties that might be used in a variety of fields, ranging from molecular electronics to biomedical applications. Such functionalization is commonly achieved by means of cycloaddition reactions. The scarcity of both experimental and theoretical studies analyzing the exohedral regioselectivity of cycloaddition reactions involving EMFs translates into a poor understanding of the EMF reactivity. From a theoretical point of view, the main obstacle is the high computational cost associated with this kind of studies. To alleviate the situation, we propose an approach named the frozen cage model (FCM) based on single point energy calculations at the optimized geometries of the empty cage products. The FCM represents a fast and computationally inexpensive way to perform accurate qualitative predictions of the exohedral regioselectivity of cycloaddition reactions in EMFs. Analysis of the Dimroth approximation, the activation strain or distortion/interaction model, and the noncluster energies in the Diels-Alder cycloaddition of s-cis-l,3-butadiene to X@D_(3h)C_(78) (X = Ti2C2 Sc3N, and Y3N) EMFs provides a justification of the method.
机译:内表面金属富勒烯(EMF)的功能化是一项活跃的研究领域,对于获得具有独特性质的纳米材料非常重要,该纳米材料可以用于从分子电子学到生物医学应用的各种领域。通常通过环加成反应来实现这种官能化。分析涉及EMF的环加成反应的面外区域选择性的实验和理论研究的匮乏,导致对EMF反应性的了解不足。从理论上讲,主要障碍是与这类研究相关的高计算成本。为了缓解这种情况,我们基于空笼产品的最佳几何形状,基于单点能量计算,提出了一种称为冷冻笼模型(FCM)的方法。 FCM代表一种快速且计算便宜的方法,可以对EMF中的环加成反应的面外区域选择性进行准确的定性预测。 s-顺式-1,3-丁二烯与X @ D_(3h)C_(78)的Diels-Alder环加成中Dimroth近似,活化应变或畸变/相互作用模型以及非簇能量的分析(X = Ti2C2 Sc3N和Y3N)EMF提供了该方法的依据。

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