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Donor–acceptor interactions between cyclic trinuclear pyridinate gold(i)-complexes and electron-poor guests: nature and energetics of guest-binding and templating on graphite

机译:环状三核吡啶酸金(i)-配合物与电子贫乏的客人之间的供体-受体相互作用:客人结合和模板化石墨的性质和能量

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摘要

Donor–acceptor-type interactions between π-electron systems are of high relevance in the design of chemical sensors. Due to their electron-rich nature, cyclic trinuclear complexes (CTCs) of gold(i) are ideal receptor sites for electron-deficient aromatic analytes. Scanning tunneling microscopy provided insight into the structures of two-dimensional crystals of pyridinate gold CTCs that form on a graphite template at the solid/liquid interface. One polymorph thereof – in turn – templated the on-top co-adsorption of π-acidic pyrazolate CTCs as electron-poor guests up to a certain threshold. From NMR titration experiments, we quantified free energies of –6.1 to –7.5 kcal mol–1 for the binding between pyridinate gold(i) CTCs and π-acidic pyrazolate CTCs. Quantum chemical calculations revealed that these interactions are largely dominated by London dispersion. These results give a more detailed insight into a rational design of sensitive CNT- or graphene-based sensors for π-acidic analytes, such as electron-deficient aromatics.
机译:π电子系统之间的供体-受体型相互作用在化学传感器的设计中具有高度相关性。由于其富电子性质,金(i)的环状三核络合物(CTC)是缺乏电子的芳香族分析物的理想受体位点。扫描隧道显微镜提供了对在固体/液体界面处的石墨模板上形成的吡啶鎓金四氯化碳的二维晶体结构的见解。其一种多晶型物又将π酸性吡唑酸酯CTC的顶部共吸附模板化为电子贫化的客体,直至达到某个阈值。从NMR滴定实验中,我们可以算出–6.1至–7.5 kcal mol –1 的自由能,用于吡啶酸金(i)CTC与π型酸性吡唑酸酯CTC之间的结合。量子化学计算表明,这些相互作用主要受伦敦色散支配。这些结果为针对π酸性分析物(例如缺乏电子的芳族化合物)的敏感的基于CNT或石墨烯的传感器的合理设计提供了更详细的见解。

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