Fritz-Haber-Institut der Max-Planck-Gesellschaft , Faradayweg 4-6 , 14195 Berlin , Germany.
J Am Chem Soc. 2019 Apr 10;141(14):5815-5823. doi: 10.1021/jacs.8b13542. Epub 2019 Mar 27.
The high Lewis basicity and small ionic radius of fluoride promote the formation of strong ionic hydrogen bonds in the complexation of fluoride with protic molecules. Herein, we report that carbonic acid, a thermodynamically disfavored species that is challenging to investigate experimentally, forms a complex with fluoride in the gas phase. Intriguingly, this complex is highly stable and is observed in abundance upon nanoelectrospray ionization of an aqueous sodium fluoride solution in the presence of gas-phase carbon dioxide. We characterize the structure and properties of the carbonic acid-fluoride complex, F(HCO), and its deuterated isotopologue, F(DCO), by helium nanodroplet infrared action spectroscopy in the photon energy range of 390-2800 cm. The complex adopts a C symmetry structure with the carbonic acid in a planar trans-trans conformation and both OH groups forming ionic hydrogen bonds with the fluoride. Substantial vibrational anharmonic effects are observed in the infrared spectra, most notably a strong blue shift of the symmetric hydrogen stretching fundamental relative to predictions from the harmonic approximation or vibrational second-order perturbation theory. Ab initio thermostated ring-polymer molecular dynamics simulations indicate that this blue shift originates from strong coupling between the hydrogen stretching and bending vibrations, resulting in an effective weakening of the OH···F ionic hydrogen bonds.
氟化物具有高路易斯碱性和小离子半径,这促进了氟化物与质子分子形成强离子氢键的配合物。在此,我们报告了碳酸,一种热力学上不利的、难以通过实验研究的物质,在气相中与氟化物形成配合物。有趣的是,这种配合物非常稳定,并且在含有气相二氧化碳的水溶液中进行纳喷雾电离时,大量观察到该配合物的存在。我们通过氦纳米液滴红外作用光谱在光子能量范围为 390-2800cm 内,对碳酸-氟化物配合物 F(HCO)及其氘代同位素 F(DCO)的结构和性质进行了表征。该配合物采用 C 对称结构,碳酸呈平面反式-反式构象,两个 OH 基团均与氟化物形成离子氢键。在红外光谱中观察到大量的振动非谐效应,尤其是对称氢伸缩基频相对于谐波近似或振动二级微扰理论的预测发生了强烈的蓝移。从头算恒温环聚合物分子动力学模拟表明,这种蓝移源于氢伸缩和弯曲振动之间的强耦合,导致 OH···F 离子氢键的有效弱化。