Molecular electrostatic potential analysis of non-covalent complexes

被引:0
|
作者
PADINJARE VEETIL BIJINA
CHERUMUTTATHU H SURESH
机构
[1] CSIR-National Institute for Interdisciplinary Science and Technology,Chemical Sciences and Technology Division and Academy of Scientific & Innovative Research (AcSIR)
来源
关键词
Non-covalent complex; hydrogen bond; halogen bond; dihydrogen bond; pnicogen bond; tetrel bond; lithium bond; chalcogen bond; molecular electrostatic potential.;
D O I
暂无
中图分类号
学科分类号
摘要
Ab initio MP4/Aug-cc-pvDZ//MP2/6-311 ++g(d,p) level interaction energy (Eint) and molecular electrostatic potential analysis (MESP) of a large variety of non-covalent intermolecular complexes, viz. tetrel, chalcogen, pnicogen, halogen, hydrogen, dihydrogen and lithium bonded complexes have been reported. The electronic changes associated with the non-covalent complex formation is monitored in terms of MESP minimum (Vmin) in the free and complexed states of the donor and acceptor molecules as well as in terms of MESP at the donor and acceptor atoms (Vn) of the free monomers and complexes. The change in Vmin or Vn on the donor molecule (ΔVmin(D) or ΔVn(D)) during complex formation is proportional to its electron donating ability while such a change on the acceptor molecule (ΔVmin(A) or ΔVn(A)) is proportional to its electron accepting ability. Further, the quantities ΔΔVmin=ΔVmin(D) −ΔVmin(A) and ΔΔVn=ΔVn(D) −ΔVn(A) have shown strong linear correlations with Eint of the complex (Eint values fall in the range 0.7 to 46.2 kcal/mol for 54 complexes) and suggest that the intermolecular non-covalent interactions in a wide variety of systems can be monitored and assessed in terms of change in MESP due to complex formation in the gas phase. With the incorporation of solvent effect in the calculation, charged systems showed significant deviations from the linear correlation. The MESP based analysis proposes that the large variety of intermolecular non-covalent complexes considered in this study can be grouped under the general category of electron donor-acceptor (eDA) complexes.
引用
收藏
页码:1677 / 1686
页数:9
相关论文
共 50 条
  • [11] Molecular complexity in inorganic chemistry: Utilizing non-covalent interactions into the molecular designs of metal complexes
    Borovik, Andrew
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 258
  • [12] Potential energy surfaces of non-covalent interactions
    Ringer, Ashley L.
    Tauer, Tony P.
    Sinnokrot, Mutasem O.
    Lively, Ryan P.
    Sherrill, C. David
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2006, 231
  • [13] Molecular balances for quantifying non-covalent interactions
    Mati, Ioulia K.
    Cockroft, Scott L.
    CHEMICAL SOCIETY REVIEWS, 2010, 39 (11) : 4195 - 4205
  • [14] THEORETICAL CONFORMATIONAL-ANALYSIS OF NON-COVALENT COMPLEXES OF CARBOXYPEPTIDASE A WITH INHIBITORS AND SUBSTRATES
    LIPKIND, GM
    PASLEN, VV
    MOLECULAR BIOLOGY, 1980, 14 (05) : 904 - 911
  • [15] Studies of non-covalent protein complexes by MALDI methods
    She, Yi-Min
    Ji, Yi-Ping
    Kao Teng Hsueh Hsiao Hua Heush Hsueh Pao/ Chemical Journal of Chinese Universities, 1999, 20 (06): : 852 - 855
  • [16] Studies of non-covalent protein complexes by MALDI methods
    She, YM
    Ji, YP
    CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 1999, 20 (06): : 852 - 855
  • [17] Non-covalent interactions of uranyl complexes: a theoretical study
    Platts, James A.
    Baker, Robert J.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2018, 20 (22) : 15380 - 15388
  • [18] Electrostatic compression on non-covalent interactions:: the case of π stacks involving ions
    Braga, D
    Bazzi, C
    Grepioni, F
    Novoa, JJ
    NEW JOURNAL OF CHEMISTRY, 1999, 23 (06) : 577 - 579
  • [19] Minimally corrected partial atomic charges for non-covalent electrostatic interactions
    Hadad, Rebecca Efrat
    Baer, Roi
    MOLECULAR PHYSICS, 2017, 115 (24) : 3155 - 3163
  • [20] A non-covalent inhibitor with pan-KRAS potential
    Katie Kingwell
    Nature Reviews Drug Discovery, 2023, 22 : 622 - 622