Zhang Guiqiu, Li Hong, Weinhold Frank, Chen Dezhan
College of Chemistry, Chemical Engineering and Materials Science, Collaborative Innovation Center of Functionalized Probes for Chemical Imaging, Key Laboratory of Molecular and Nano Probes, Ministry of Education, Shandong Normal University, Wenhua East Road 88, Jinan, Shandong 250014, P. R. China.
Department of Chemistry, University of Wisconsin, Madison, Wisconsin 53706, USA.
Phys Chem Chem Phys. 2016 Mar 21;18(11):8015-26. doi: 10.1039/c5cp07965a.
Noble-gas hydrides HNgY are frequently described as a single ionic form (H-Ng)(+)Y(-). We apply natural bond orbital (NBO) and natural resonance theory (NRT) analyses to a series of noble-gas hydrides HNgY (Ng = He, Ne, Ar, Kr, Xe, Rn; Y = F, Cl, Br, I) to gain quantitative insight into the resonance bonding of these hypervalent molecules. We find that each of the studied species should be better represented as a resonance hybrid of three leading resonance structures, namely, H-Ng(+ -):Y (I), H:(- +)Ng-Y (II), and H^Y (III), in which the "ω-bonded" structures I and II arise from the complementary donor-acceptor interactions nY → σHNg and nH → σNgY, while the "long-bond" ([small sigma, Greek, circumflex]-type) structure III arises from the nNg → [small sigma, Greek, circumflex]*HY/[small sigma, Greek, circumflex]HY interaction. The bonding for all of the studied molecules can be well described in terms of the continuously variable resonance weightings of 3c/4e ω-bonding and [small sigma, Greek, circumflex]-type long-bonding motifs. Furthermore, we find that the calculated bond orders satisfy a generalized form of "conservation of bond order" that incorporates both ω-bonding and long-bonding contributions [viz., (bHNg + bNgY) + bHY = bω-bonding + blong-bonding = 1]. Such "conservation" throughout the title series implies a competitive relationship between ω-bonding and [small sigma, Greek, circumflex]-type long-bonding, whose variations are found to depend in a chemically reasonable manner on the electronegativity of Y and the outer valence-shell character of the central Ng atom. The calculated bond orders are also found to exhibit chemically reasonable correlations with bond lengths, vibrational frequencies, and bond dissociation energies, in accord with Badger's rule and related empirical relationships. Overall, the results provide electronic principles and chemical insight that may prove useful in the rational design of noble-gas hydrides of technological interest.
稀有气体氢化物HNgY通常被描述为单一的离子形式(H-Ng)(+)Y(-)。我们对一系列稀有气体氢化物HNgY(Ng = He、Ne、Ar、Kr、Xe、Rn;Y = F、Cl、Br、I)应用自然键轨道(NBO)和自然共振理论(NRT)分析,以定量洞察这些超价分子的共振键合。我们发现,每个研究的物种都应更好地表示为三种主要共振结构的共振杂化体,即H-Ng(+-):Y(I)、H:(-+)Ng-Y(II)和H^Y(III),其中“ω键合”结构I和II源于互补的给体-受体相互作用nY→σHNg和nH→σNgY,而“长键”([小σ,希腊文,扬抑抑格]型)结构III源于nNg→[小σ,希腊文,扬抑抑格]*HY/[小σ,希腊文,扬抑抑格]HY相互作用。所有研究分子的键合都可以用3c/4e ω键合和[小σ,希腊文,扬抑抑格]型长键合基序的连续可变共振权重来很好地描述。此外,我们发现计算出的键级满足“键级守恒”的广义形式,该形式同时包含了ω键合和长键合贡献[即,(bHNg + bNgY) + bHY = bω键合 + blong键合 = 1]。整个标题系列中的这种“守恒”意味着ω键合和[小σ,希腊文,扬抑抑格]型长键合之间的竞争关系,发现其变化以化学上合理的方式取决于Y的电负性和中心Ng原子的外层价电子壳层特征。计算出的键级还与键长、振动频率和键解离能呈现出化学上合理的相关性,这与巴杰规则及相关经验关系一致。总体而言,这些结果提供了电子原理和化学洞察,可能对具有技术应用价值的稀有气体氢化物的合理设计有用。