Probing the Electronic Properties and Interaction Landscapes in a Series of -(Chlorophenyl)pyridinecarboxamides.

Cryst Growth Des

CRM, CNRS UMR 7036, Faculté des Sciences et Technologies, Université de Lorraine, BP 70239, Boulevard des Aiguillettes, 54506 Vandoeuvre-lès-Nancy, France.

Published: May 2022

AI Article Synopsis

  • A new 3 × 3 isomer grid of nine -(chlorophenyl)pyridinecarboxamides has been created, featuring studies of their physicochemical properties and single crystal structures derived from specific chemical reactions.
  • The crystal structures demonstrate similarities with their halogenated and methylated counterparts, with five showing isomorphism, while hydrogen bonding interactions play a significant role in molecular structure and stability.
  • The melting temperatures of the compounds are influenced by lattice energy and molecular symmetry, and their relationships with various energy components have been analyzed using advanced techniques like Hirshfeld surface analysis.

Article Abstract

A 3 × 3 isomer grid of nine -(chlorophenyl)pyridinecarboxamides () is reported with physicochemical studies and single crystal structures ( = pyridinoyl moiety; = aminochlorobenzene ring; = -/-/-), as synthesized by the reaction of the substituted -/-/-pyridinecarbonyl chlorides () with -/-/-aminochlorobenzenes (). Several of the nine crystal structures display structural similarities with their halogenated and methylated relatives ( = -//-substitutions; = F, Br; = methyl). Indeed, five of the nine crystal structures are isomorphous with their analogues as the /, /, /, /, and / pairs. In the series, the favored hydrogen bonding mode is aggregation by N-H···N interactions, though amide···amide intermolecular interactions are noted in and . For the triad, intramolecular N-H···N interactions influence molecular planarity, whereas (as a monohydrate) exhibits O-H···O, N-H···O1W, and O1W-H···N interactions as the primary hydrogen bonding. Analysis of chlorine-containing compounds on the CSD is noted for comparisons. The interaction environments are probed using Hirshfeld surface analysis and contact enrichment studies. The melting temperatures ( ) depend on both the lattice energy and molecular symmetry (Carnelley's rule), and the melting points can be well predicted from a linear regression of the two variables. The relationships of the values with the total energy, the electrostatic component, and the strongest hydrogen bond components have been analyzed.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9074230PMC
http://dx.doi.org/10.1021/acs.cgd.2c00153DOI Listing

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