Department of Chemistry, Faculty of Science, Shizuoka University, 836 Ohya, Suruga, Shizuoka 422-8529, Japan.
Graduate School of Material Science, University of Hyogo, 3-2-1 Kohto, Kamigori, Hyogo 678-1297, Japan.
J Phys Chem A. 2020 Mar 26;124(12):2436-2448. doi: 10.1021/acs.jpca.0c00794. Epub 2020 Mar 13.
The geometry and energetics of the N-H···O═C hydrogen bond (H-bond) are important to understand the stability and flexibility of biomolecules, such as protein and DNA. Jet-cooled pyrrole-cyclopentanone (Py-Cp) binary clusters are appropriate models to investigate the N-H···O═C H-bond from a microscopic point of view. In this study, NH stretching vibrations of the Py-Cp binary clusters were observed by IR cavity ringdown spectroscopy. Furthermore, density functional theory calculations revealed geometric structures, harmonic vibrations, intermolecular energies, and donor-acceptor interactions for various sizes of binary clusters. The IR spectra of the Py-Cp binary clusters were measured under various conditions of the vapor pressures of Py and Cp in He buffer gas for a supersonic expansion. The dependence of the IR band intensities on the vapor pressure provides vibrational assignments of the NH stretching vibrations, which were reproduced by calculated frequencies of Py-Cp, Py-Cp, and Py-Cp. An admixture of Ar in He buffer gas for a supersonic expansion was also applied to produce Py-Cp in order to differentiate several NH stretches of isomeric structures due to the pseudorotation of Cp molecules. Py-Cp is formed by the N-H···O═C H-bond. Py-Cp has a cyclic structure that is formed by the N-H···O═C H-bond and stacking interactions among Py and two Cp molecules. Py-Cp also has a cyclic structure that is formed by not only the N-H···O═C H-bond but also a N-H···π H-bond between two Py molecules and a stacking interaction between Py and Cp. A comparison of the H-bond geometries between Py-Cp and the corresponding pyrrole-acetone binary cluster reveals that the stacking interaction between Py and Cp strengthens the N-H···O═C H-bond through a cooperative effect.
N-H···O=C 氢键的几何形状和能量对于理解生物分子(如蛋白质和 DNA)的稳定性和灵活性非常重要。喷射冷却的吡咯-环戊酮(Py-Cp)二元团簇是从微观角度研究 N-H···O=C 氢键的合适模型。在这项研究中,通过红外腔衰荡光谱观察了 Py-Cp 二元团簇的 NH 伸缩振动。此外,密度泛函理论计算揭示了各种尺寸二元团簇的几何结构、谐振动、分子间能量和供体-受体相互作用。在 He 缓冲气体中的 Py 和 Cp 蒸气压的各种条件下,测量了 Py-Cp 二元团簇的红外光谱。IR 带强度对蒸气压的依赖性提供了 NH 伸缩振动的振动归属,这些归属通过 Py-Cp、Py-Cp 和 Py-Cp 的计算频率得到了重现。在 He 缓冲气体中加入 Ar 进行超音速膨胀也被应用于产生 Py-Cp,以便由于 Cp 分子的拟旋转而区分异构结构的几个 NH 伸展。Py-Cp 是由 N-H···O=C 氢键形成的。Py-Cp 具有由 N-H···O=C 氢键和 Py 与两个 Cp 分子之间的堆积相互作用形成的环状结构。Py-Cp 还具有由不仅 N-H···O=C 氢键而且两个 Py 分子之间的 N-H···π H 键和 Py 与 Cp 之间的堆积相互作用形成的环状结构。Py-Cp 与相应的吡咯-丙酮二元团簇之间的氢键几何形状的比较表明,Py 和 Cp 之间的堆积相互作用通过协同效应增强了 N-H···O=C 氢键。