AI Article Synopsis

  • The article examines how different halogen bonds affect cooperativity in specific molecular complexes involving fluorin and various substitutions.
  • The research employs theoretical methods to analyze the geometric and energetic properties of these complexes, using advanced computational techniques.
  • Findings reveal that complexes with electron-donating groups show strong cooperativity, while those with less favorable configurations exhibit weaker interactions, with electrostatic and dispersion forces being key contributors to these cooperative effects.

Article Abstract

This article analyzes the substitution effects on cooperativity between fluorin-centered halogen bonds in NCF · · · NCF · · · NCX and CNF · · · CNF · · · CNX complexes, where X = H, F, Cl, CN, OH, and NH₂. These effects are investigated theoretically in terms of geometric and energetic features of the complexes, which are computed by ab initio methods. The topological analysis, based on the quantum theory of atoms in molecules (QTAIM), is used to characterize the interactions and analyze their enhancement with varying electron density at bond critical points. It is found that the complexes with electron-donating groups exhibit a strong cooperativity, while a much weaker cooperativity occurs in the NCF · · · NCF · · · NCCN and CNF · · · CNF · · · CNCN trimers. An excellent correlation is found between the cooperative energy in the ternary complexes and the calculated three-body interaction energies. The energy decomposition analysis (EDA) indicates that the electrostatic and dispersion effects play a main role in the cooperativity of fluorine-centered halogen bonding.

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Source
http://dx.doi.org/10.1007/s00894-013-2032-4DOI Listing

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