4.4 Article

A Quantitative Molecular Orbital Perspective of the Chalcogen Bond

期刊

CHEMISTRYOPEN
卷 10, 期 4, 页码 391-401

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/open.202000323

关键词

activation strain model; chalcogen bonding; density functional calculations; energy decomposition analysis; noncovalent interactions

资金

  1. Brazilian agency Fundacao de Amparo a Pesquisa do Estado de Minas Gerais (FAPEMIG)
  2. Brazilian agency Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior (CAPES)
  3. Brazilian agency Conselho Nacional de Desenvolvimento Cientifico e Tecnologico (CNPq)
  4. Netherlands Organization for Scientific Research (NWO)
  5. SURF Cooperative

向作者/读者索取更多资源

Quantum chemically analyzed the structure and stability of chalcogen-bonded model complexes D(2)Ch...A(-), revealing a significant covalent character in chalcogen bonds due to strong HOMO-LUMO interactions; these interactions not only contribute significantly to bond strength, but also induce structural distortions and charge transfer from A(-) to D(2)Ch.
We have quantum chemically analyzed the structure and stability of archetypal chalcogen-bonded model complexes D(2)Ch...A(-) (Ch = O, S, Se, Te; D, A = F, Cl, Br) using relativistic density functional theory at ZORA-M06/QZ4P. Our purpose is twofold: (i) to compute accurate trends in chalcogen-bond strength based on a set of consistent data; and (ii) to rationalize these trends in terms of detailed analyses of the bonding mechanism based on quantitative Kohn-Sham molecular orbital (KS-MO) theory in combination with a canonical energy decomposition analysis (EDA). At odds with the commonly accepted view of chalcogen bonding as a predominantly electrostatic phenomenon, we find that chalcogen bonds, just as hydrogen and halogen bonds, have a significant covalent character stemming from strong HOMO-LUMO interactions. Besides providing significantly to the bond strength, these orbital interactions are also manifested by the structural distortions they induce as well as the associated charge transfer from A(-) to D(2)Ch.

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