Institute "JoŽef Stefan", Jamova 39, 1000 Ljubljana, Slovenia.
Phys Chem Chem Phys. 2018 Dec 19;21(1):306-313. doi: 10.1039/c8cp05183f.
The position of protons in hydrogen bonds is often uncertain to some degree, as the technique most often used for structure determination, X-ray diffraction, is sensitive to electron density, which is not particularly abundant around protons. In hydrogen bonds, protons introduce an additional problem: the potential for proton motion is inherently anharmonic and thus requires the consideration of nuclear quantum effects (NQEs). Here, we demonstrate that 14N NQR spectroscopy is able to rather accurately determine proton positions in N-HN bonds, in certain cases with an accuracy comparable to that of X-ray and neutron diffraction at room temperature. We first derive, using ab initio calculations considering also the NQEs, a relation between the proton distance from the bond midpoint and the difference between the quadrupole coupling constants for the two nitrogen sites. The found relation is linear with a proportionality constant of 0.108 Å MHz-1 for tertiary amine nitrogens. Then, we validate our theoretical calculations experimentally, using several 1,8-bis(dimethylamino)naphthalene (DMAN) complexes.
质子在氢键中的位置在某种程度上通常是不确定的,因为用于结构确定的最常用技术——X 射线衍射对电子密度敏感,而电子密度在质子周围并不特别丰富。在氢键中,质子引入了一个额外的问题:质子运动的潜力本质上是非谐的,因此需要考虑核量子效应(NQEs)。在这里,我们证明 14N NQR 光谱能够相当准确地确定 N-HN 键中的质子位置,在某些情况下,其准确度可与室温下的 X 射线和中子衍射相媲美。我们首先使用考虑 NQEs 的从头算计算得出,质子与键中点的距离与两个氮位的四极耦合常数之间的差值之间的关系。对于叔胺氮,发现的关系是线性的,比例常数为 0.108 Å MHz-1。然后,我们使用几个 1,8-双(二甲氨基)萘(DMAN)配合物实验验证了我们的理论计算。