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Open-shell characters and second hyperpolarizabilities of one-dimensional graphene nanoflakes composed of trigonal graphene units

机译:由三角形石墨烯单元组成的一维石墨烯纳米薄片的开壳特性和第二超极化性

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摘要

The impact of topology on the open-shell characters and the second hyperpolarizabilities (γ) has been addressed for one-dimensional graphene nanoflakes (GNFs) composed of the smallest trigonal graphene (phenalenyl) units. The main results are: 1) These GNFs show not only diradical but also multiradical characters when increasing the number of linked units. 2) GNFs composed of an equivalent number of units can exhibit a wide range of open-shell characters-from nearly closed-shell to pure multiradical characters-depending on the linking pattern of the trigonal units. 3) This wide variation in open-shell characters is explained by their resonance structures and/or by their (HOMO-i)-(LUMO+i) gaps deduced from the orbital correlations. 4) The change in the linking structure of the units can effectively control their open-shell characters as well as their γ values, of which the longitudinal components are significantly enhanced for the singlet GNFs having intermediate open-shell characters. 5) Singlet alternately linked (AL) systems present intermediate multiradical characters even in the case of a large number of units, which creates a significant enhancement of γ with increasing the size, whereas nonalternately linked (NAL) systems, which present pure multiradical characters, possess much smaller γ values. Finally 6) by switching from the singlet to the highest spin states, the γ values of NAL systems hardly change, whereas those of AL systems exhibit large reductions. These fascinating structure-property relationships between the topology of the GNFs, their open-shell characters, and their γ values not only deepen the understanding of open-shell characters of GNFs but aim also at stimulating further design studies to achieve giant NLO responses based on open-shell graphene-like materials.
机译:对于由最小的三角石墨烯(菲烯基)单元组成的一维石墨烯纳米薄片(GNF),已经解决了拓扑结构对开壳特征和第二超极化性(γ)的影响。主要结果是:1)这些GNF在增加链接单元数时不仅显示双自由基特征,而且还显示多自由基特征。 2)由相等数量的单元组成的GNF可以显示多种开壳字符-从几乎闭壳到纯多基字符-取决于三角单元的链接方式。 3)开壳特征的广泛变化是由其共振结构和/或由轨道相关性推导的(HOMO-i)-(LUMO + i)间隙解释的。 4)单元的连接结构的变化可以有效地控制它们的开壳特征以及它们的γ值,其中对于具有中间开壳特征的单线态GNF,其纵向分量显着增强。 5)单重态交替链接(AL)系统即使在大量单元的情况下也呈现出中间的多自由基特征,这会随着尺寸的增加而显着增强γ,而非交替链接(NAL)系统则呈现纯的多自由基特征,具有较小的γ值。最后,6)通过从单重态转换到最高自旋态,NAL系统的γ值几乎不变,而AL系统的γ值却显示出很大的降低。 GNF的拓扑结构,其开壳特性及其γ值之间的这些令人着迷的结构属性关系,不仅加深了对GNF的开壳特性的理解,而且还旨在刺激进一步的设计研究,以实现基于NNF的巨大NLO响应。开壳石墨烯状材料。

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