Department of Spectroscopy, Indian Association for the Cultivation of Science , 2A and 2B Raja S. C. Mullick Road, Jadavpur, 700032 Kolkata, West Bengal, India.
J Phys Chem B. 2017 Feb 2;121(4):825-834. doi: 10.1021/acs.jpcb.6b12391. Epub 2017 Jan 18.
Confined molecular chambers such as macrocycle bridged E-H···H-E (E(E) = Si(Si), 1) exhibit rare ultrashort H···H nonbonded contacts (d(H···H) = 1.56 Å). In this article, on the basis of density functional theory and ab initio molecular dynamics simulations, we propose new molecular motifs where d(H···H) can be reduced to 1.44 Å (E(E) = Si(Ge), 3). Further tuning the structure of the macrocycle by replacing the bulky phenyl groups by ethylenic spacers and substitution of the H-atoms by -CN groups makes the cavity more compact and furnishes even shorter d(H···H) = 1.38 Å (E(E) = Ge(Ge), 8). These unusually close H···H nonbonded contacts originate from the strong attractive noncovalent interactions between them, which are evident from various computational indicators, namely, NCI, Wiberg bond index, relaxed force constant, quantum theory of atoms in molecules, and natural orbitals for chemical valence combined with the extended transition state method analyses. Substantial stabilization of the in,in-configuration (exhibiting short H···H contacts) compared with the out,out-configuration (by ∼5.7 kcal/mol) and statistically insignificant fluctuations in ⟨d(H···H)⟩ and ⟨θ⟩(θ(E(E)-H···H = 152°) at room temperature confirm that the ultrashort H···H distances in these molecules are thermodynamically stable and would be persistent under ambient experimental conditions.
受限的分子腔,如大环桥接的 E-H···H-E(E(E) = Si(Si),1),表现出罕见的超短 H···H 非键接触(d(H···H) = 1.56 Å)。在本文中,基于密度泛函理论和从头算分子动力学模拟,我们提出了新的分子基序,其中 d(H···H)可减小到 1.44 Å(E(E) = Si(Ge),3)。通过用烯丙基间隔基替换大体积的苯基基团并将 H 原子替换为 -CN 基团进一步调整大环的结构,使空腔更加紧凑,并提供甚至更短的 d(H···H) = 1.38 Å(E(E) = Ge(Ge),8)。这些异常接近的 H···H 非键接触源自它们之间强烈的吸引力非共价相互作用,这从各种计算指标中显而易见,即 NCI、Wiberg 键指数、松弛力常数、原子分子量子理论和自然轨道化学价与扩展过渡态方法分析相结合。与 out,out-configuration(通过 ∼5.7 kcal/mol)相比,in,in-configuration(表现出短 H···H 接触)的大量稳定化以及 ⟨d(H···H)⟩和 ⟨θ⟩(θ(E(E)-H···H = 152°)在室温下的统计上无意义波动证实了这些分子中超短 H···H 距离在热力学上是稳定的,并且在环境实验条件下将保持持久。