Zhou Shengmin, Wang Lu
Department of Chemistry and Chemical Biology, Institute for Quantitative Biomedicine, Rutgers University, Piscataway, New Jersey 08854, USA.
J Chem Phys. 2020 Sep 21;153(11):114301. doi: 10.1063/5.0024734.
The monoprotonated compound N,N',N''-tris(p-tolyl)azacalix3pyridine (TAPH) contains an intramolecular hydrogen bond that is formed from three N atoms in its cavity. Constrained by the macrocyclic molecular structure, the separations between the N atoms in this bifurcated hydrogen bond are about 2.6 Å, considerably shorter than those typically observed for hydrogen bonded systems in the condensed phases. As such, TAPH exhibits significantly elongated N-H lengths in its hydrogen bond and a downfield H NMR chemical shift of 22.1 ppm. In this work, we carry out ab initio molecular dynamics and ab initio path integral molecular dynamics simulations of TAPH in the acetonitrile solution to reveal the geometry and proton sharing conditions of the bifurcated short hydrogen bond and uncover how the interplay of electronic and nuclear quantum effects gives rise to its far downfield H chemical shift. Taking a linear short hydrogen bond as a reference, we demonstrate the distinct features of competing quantum effects and electronic shielding effects in the bifurcated hydrogen bond of TAPH. We further use the degree of deshielding on the proton as a measure of the hydrogen bonding interactions and evaluate the strength of the bifurcated short hydrogen bond as compared to its linear counterpart.
单质子化化合物N,N',N''-三(对甲苯基)氮杂杯3吡啶(TAPH)含有一个分子内氢键,该氢键由其空腔中的三个氮原子形成。受大环分子结构的限制,这种分叉氢键中氮原子之间的间距约为2.6 Å,明显短于凝聚相中氢键体系通常观察到的间距。因此,TAPH在其氢键中表现出显著拉长的N-H长度和22.1 ppm的低场H NMR化学位移。在这项工作中,我们对乙腈溶液中的TAPH进行了从头算分子动力学和从头算路径积分分子动力学模拟,以揭示分叉短氢键的几何结构和质子共享条件,并揭示电子和核量子效应的相互作用如何导致其远低场H化学位移。以线性短氢键为参考,我们展示了TAPH分叉氢键中竞争量子效应和电子屏蔽效应的独特特征。我们进一步使用质子去屏蔽程度作为氢键相互作用的量度,并评估分叉短氢键与其线性对应物相比的强度。