Deutsches Elektronen-Synchrotron (DESY), Notkestraße 85, 22607 Hamburg, Germany.
Phys Chem Chem Phys. 2021 Apr 28;23(16):9721-9732. doi: 10.1039/d1cp00898f.
We report on the noncovalent intermolecular interactions established between the polycyclic aromatic hydrocarbons phenanthrene and phenanthridine with water. Such noncovalent interactions involving extended aromatic systems and water molecules are ubiquitous in a variety of chemical and biological systems. Our study provides spectroscopic results on simple model systems to understand the impact that an extended aromatic surface and the presence of a heteroatom have on the nature of the noncovalent interactions established with the solvent. Microhydrated phenanthrene and phenanthridine clusters with up to three water molecules have been observed and unambiguously characterised by means of broadband rotational spectroscopy and quantum chemical calculations. The presence of a nitrogen atom in the backbone of phenanthridine remarkably affects the geometries of the water clusters and the interaction networks at play, with O-HN and C-HO interactions becoming preferred in the phenanthridine-water clusters over the O-Hπ interactions seen in the phenanthrene-water clusters. The presence of this heteroatom induces nuclear quadrupole coupling, which was used to understand the cooperativity effects found with increasing cluster size. Our results provide important insight to draw a more complete picture of the noncovalent interactions involving solvent molecules and aromatic systems larger than benzene, and they can be significant to enhance our understanding of the aromatic-polar interactions at play in a myriad of chemical and biological contexts.
我们报告了多环芳烃菲和菲啶与水之间建立的非共价分子间相互作用。这种涉及扩展芳香体系和水分子的非共价相互作用在各种化学和生物系统中无处不在。我们的研究提供了关于简单模型系统的光谱结果,以了解扩展芳香表面和杂原子的存在对与溶剂建立的非共价相互作用的性质的影响。已经观察到并通过宽带旋转光谱和量子化学计算明确表征了多达三个水分子的微水合菲和菲啶簇。菲啶骨架中氮原子的存在显著影响水簇的几何形状和作用的相互作用网络,在菲啶-水簇中,O-HN 和 C-HO 相互作用比在菲-水簇中看到的 O-Hπ 相互作用更受青睐。这种杂原子的存在诱导核四极矩耦合,这用于理解随着簇尺寸增加而发现的协同效应。我们的结果为更全面地了解涉及溶剂分子和大于苯的芳香体系的非共价相互作用提供了重要的见解,并且对于增强我们对在众多化学和生物环境中起作用的芳香极性相互作用的理解具有重要意义。