Nitrogen-centered Lewis bases are well established as nucleophiles in synthetic chemistry, as ligands in coordination chemistry and as pervasive components of hydrogen bonding in chemistry and structural biology. Their role as acceptors of halogen, chalcogen, pnictogen and tetrel bonds, collectively σ-hole interactions, is also well established experimentally, but only selectively investigated through exploration of geometric and energetic trends. Here we report a comprehensive study, in which we identify the prevalence of this class of interactions and analyze experimental geometric trends from crystallographic data. These analyses are supported by high-accuracy coupled-cluster quantum chemical calculations of interaction energies and use of symmetry-adapted perturbation theory (SAPT) to examine the underlying energetic contributions. Our focus is on comparison, across the four families of σ-hole interactions, of the behavior for Nsp3 vs Nsp2 vs Nsp hybridization at the nitrogen atom bearing the lone pair. Halogen and chalcogen bonds are more abundant than pnictogen and tetrel bonds, whereas interaction prevalence tends to be greatest for the heavier congeners in each σ-hole donor group (i.e., I, Te, Sb/Bi, Sn/Pb). The relative prevalence of tetrel bonds compared to halogen bonds increases from Nsp3 to Nsp2 to Nsp acceptors, highlighting the importance of steric demands. The heavier congeners among the σ-hole donors generally form interactions with shorter normalized interaction distances, although this is mitigated by sterics, most prominently for tetrel bonds and for Nsp3 Lewis bases. Preference for linearity with respect to the σ-hole angle and the angle at the nitrogen lone pair follow the trend Nsp3 > Nsp2 > Nsp also as a consequence of steric demands. More generally, SAPT analysis of interaction energies clearly indicates the prominent influence of sterics, through exchange repulsion, on angular preferences of all interactions. The broader implications of these comprehensive results in areas such as supramolecular, materials and medicinal chemistry are considered.
Nitrogen-substituted chalcogen heterocycles (oxazole, thiazole, and selenazole) are electron-rich aromatic compounds with significant biological relevance. In this study, we investigate their noncovalent interactions with formic acid (FA) using a combination of ab initio and density functional theory methods. Molecular...
Haimyapriya Buragohain, R. C. Deka, Kaushik Talukdar· Proceedings of the Indian Ac...· 0 citations
Halogen bonding (XB) is often analyzed in terms of isolated dimers, yet under realistic solution conditions, it coexists with a dense, rapidly fluctuating network of weaker contacts whose net effect on bond strength is difficult to quantify. Here, we combine gas-phase quantum-chemical calculations with explicit-solvent...
D. V. Krutin, A. A. Titova, M. Kaplanskiy et al.· Journal of Physical Chemistr...· 0 citations
Sulfur-containing heterocycles such as thiophene, thiazole, and thiadiazole frequently appear in biologically active molecules, although the intrinsic nature of their S···O chalcogen-bonding (ChB) interactions in protein–ligand complexes is yet to be completely understood. In this work, a comprehensive survey of the...
Heena Charaya, Anamika Ghosh, Riya Saha et al.· Journal of Physical Chemistr...· 0 citations
Poly-nitrogen compounds exhibit energy densities far exceeding those of traditional energetic materials, yet their poor stability limits their synthesis and applications. This work proposes a molecular matching strategy that systematically screens insensitive energetic compounds that match in electronic structure and...
Xiao-Feng Yuan, Ze Xu, Yuan-Gang Xu et al.· Langmuir· 0 citations
Pnictogen bonding (PnB) has emerged as a directional and tunable noncovalent interaction, yet the presence of multiple σ-holes on trivalent pnictogen centers introduces a question: can individual σ-holes be selectively addressed for binding, and do their relative reactivities remain unchanged upon sequential binding? T...
Curt N. Bateman, Shiva Moaven, Angela M. Lee et al.· Inorganic Chemistry· 0 citations
Actinide hydride and alkyl chemistry is governed by the unique electronic structure of f-element centers, wherein pronounced oxophilicity and a d⁰/fⁿ configuration favor polar, non-redox pathways over classical oxidative addition. As a result, actinide–hydrogen and actinide–carbon bonds exhibit reactivity dominated by...
M. G. Kaumini· 0 citations
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