Non-Innocent π Linkers Affect Cooperativity in Hydrogen-Bonded Macrocycles

David Almacellas, Dr. Stephanie C. C. van der Lubbe, Alice A. Grosch, Iris Tsagri, Dr. Pascal Vermeeren, Dr. Jordi Poater, Prof. Dr. Célia Fonseca Guerra
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Abstract

Rigid, linear π-conjugated acetylene linkers connecting a hydrogen-bond acceptor to a hydrogen-bond donor are established building blocks for self-assembled hydrogen-bonded macrocycles. Kohn-Sham molecular orbital and Voronoi deformation density analyses reveal that the acetylene linker plays an unprecedented, non-innocent role in the cooperativity of these hydrogen-bonded macrocycles. The acetylene linker can abstract electron density from the hydrogen-bond acceptor and donor, due to the linkers’ low-lying π-LUMO. As a result, the hydrogen-bond acceptor becomes less negatively charged, which both hampers the cooperativity, as well as the hydrogen bond strength, in the hydrogen-bonded macrocycles. This effect becomes more pronounced when the size of the acetylene linker increases. The findings presented in this work can act as design principles for the development of novel supramolecular macrocycles based on hydrogen bonds.

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非无辜π连接体影响氢键大环的合作性
连接氢键受体和氢键供体的刚性线性π-共轭乙炔连接体是自组装氢键大环的既定构件。Kohn-Sham 分子轨道和 Voronoi 变形密度分析表明,乙炔连接体在这些氢键大环的合作性中发挥着前所未有的、非无辜的作用。由于连接体的 π-LUMO 位置较低,乙炔连接体可以从氢键受体和供体中抽取电子密度。因此,氢键受体所带的负电荷较少,这既影响了氢键大环的合作性,也影响了氢键的强度。当乙炔连接体的尺寸增大时,这种影响会变得更加明显。本研究的发现可作为开发基于氢键的新型超分子大环的设计原则。
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