Characterization of N•••O non-covalent interactions involving σ-holes: "electrostatics'' or "dispersion''

被引:16
|
作者
Shukla, Rahul [1 ]
Chopra, Deepak [1 ]
机构
[1] Indian Inst Sci Educ & Res Bhopal, Dept Chem, Crystallog & Crystal Chem Lab, Bhopal By Pass Rd, Bhopal 462066, Madhya Pradesh, India
关键词
CHALCOGEN-CHALCOGEN INTERACTIONS; CHARGE-DENSITY; PNICOGEN BONDS; HYDROGEN-BOND; MOLECULAR-INTERACTIONS; HALOGEN BONDS; ELECTRONEGATIVE SUBSTITUENTS; INTERMOLECULAR INTERACTIONS; THEORETICAL INVESTIGATIONS; DI(TERTIARY PHOSPHINES);
D O I
10.1039/c6cp05899j
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In this article, the existence of N center dot center dot center dot O noncovalent interactions was explored in per-halo substituted ammonia-water complexes. Optimized geometry at the MP2/aug-cc-pVTZ level shows that the N center dot center dot center dot O distance in all complexes is less than the sum of the vdW radii of N and O. The strength of these contacts was directly dependent on the extent of chlorine substitution on N or O atoms. Also, the level of theory and the basis set employed for the binding energy calculations have a direct effect on the strength of the N center dot center dot center dot O contacts. Energy decomposition analysis reveals that dispersion was the major contributor towards the stability of these contacts followed by electrostatic energy. The topological analysis further confirmed the existence of N center dot center dot center dot O contacts due to the presence of a bond critical point between the N and the O atom in all the complexes. These contacts have characteristics of a sigma-hole interaction with the NBO analysis revealing that the primary charge transfer in all the complexes is occurring from O( lp) to sigma star( N-X) orbitals, confirming these interactions to be predominantly in the category of pnicogen bonds.
引用
收藏
页码:29946 / 29954
页数:9
相关论文
共 50 条
  • [31] Non-covalent interactions involving halogenated derivatives of capecitabine and thymidylate synthase: a computational approach
    Rahman, Adhip
    Hoque, Mohammad Mazharol
    Khan, Mohammad A. K.
    Sarwar, Mohammed G.
    Halim, Mohammad A.
    SPRINGERPLUS, 2016, 5 : 1 - 18
  • [32] B3LYP+dispersion-correcting potentials = accurate non-covalent interactions
    DiLabio, Gino A.
    Torres, Edmanuel
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 245
  • [33] Performance of dispersion-corrected density functional theory for thermochemistry and non-covalent interactions
    Waldemar Hujo
    Stefan Grimme
    Journal of Cheminformatics, 4 (Suppl 1)
  • [34] The role of non-covalent interactions and matrix viscosity on the dispersion and properties of LLDPE/MWCNT nanocomposites
    Vasileiou, Alexandros A.
    Docoslis, Aristides
    Kontopoulou, Marianna
    Xiang, Peng
    Ye, Zhibin
    POLYMER, 2013, 54 (19) : 5230 - 5240
  • [35] Exploiting non-covalent π interactions for catalyst design
    Neel, Andrew J.
    Hilton, Margaret J.
    Sigman, Matthew S.
    Toste, F. Dean
    NATURE, 2017, 543 (7647) : 637 - 646
  • [36] A methodological analysis for the assessment of non-covalent π interactions
    Quinonero, David
    Estarellas, Carolina
    Frontera, Antonio
    Deya, Pere M.
    CHEMICAL PHYSICS LETTERS, 2011, 508 (1-3) : 144 - 148
  • [37] Small Molecules, Non-Covalent Interactions, and Confinement
    Buntkowsky, Gerd
    Vogel, Michael
    MOLECULES, 2020, 25 (14):
  • [38] Non-covalent interactions in small thiophene clusters
    Malloum, Alhadji
    Conradie, Jeanet
    JOURNAL OF MOLECULAR LIQUIDS, 2022, 347
  • [39] Molecular balances for quantifying non-covalent interactions
    Mati, Ioulia K.
    Cockroft, Scott L.
    CHEMICAL SOCIETY REVIEWS, 2010, 39 (11) : 4195 - 4205
  • [40] A benchmark for non-covalent interactions in organometallic crystals
    Miron, Jose Eduardo Zamudio Diaz
    Stein, Matthias
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2022, 24 (48) : 29338 - 29349