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The Origin of Chalcogen-Bonding Interactions

机译:硫族元素键相互作用的起源

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摘要

Favorable molecular interactions between group 16 elements have been implicated in catalysis, biological processes, and materials and medicinal chemistry. Such interactions have since become known as chalcogen bonds by analogy to hydrogen and halogen bonds. Although the prevalence and applications of chalcogen-bonding interactions continues to develop, debate still surrounds the energetic significance and physicochemical origins of this class of σ-hole interaction. Here, synthetic molecular balances were used to perform a quantitative experimental investigation of chalcogen-bonding interactions. Over 160 experimental conformational free energies were measured in 13 different solvents to examine the energetics of O···S, O···Se, S···S, O···HC, and S···HC contacts and the associated substituent and solvent effects. The strongest chalcogen-bonding interactions were found to be at least as strong as conventional H-bonds, but unlike H-bonds, surprisingly independent of the solvent. The independence of the conformational free energies on solvent polarity, polarizability, and H-bonding characteristics showed that electrostatic, solvophobic, and van der Waals dispersion forces did not account for the observed experimental trends. Instead, a quantitative relationship between the experimental conformational free energies and computed molecular orbital energies was consistent with the chalcogen-bonding interactions being dominated by n → σ∗ orbital delocalization between a lone pair (n) of a (thio)amide donor and the antibonding σ∗ orbital of an acceptor thiophene or selenophene. Interestingly, stabilization was manifested through the same acceptor molecular orbital irrespective of whether a direct chalcogen···chalcogen or chalcogen···H-C contact was made. Our results underline the importance of often-overlooked orbital delocalization effects in conformational control and molecular recognition phenomena.
机译:在催化,生物过程,材料和药物化学中已经涉及到第16组元素之间的良好分子相互作用。自此以来,类似于氢和卤素键,这种相互作用被称为硫属元素键。尽管硫族元素键相互作用的流行和应用不断发展,但辩论仍围绕此类σ-孔相互作用的能量意义和理化起源。在这里,合成分子平衡被用于进行硫属元素-键相互作用的定量实验研究。在13种不同的溶剂中测量了160多个实验构象自由能,以检查O··S,O··Se,S··S,O··HC和S··HC接触的能量。相关的取代基和溶剂效应。发现最强的硫族元素-键相互作用至少与常规的H键一样强,但是与H键不同,令人惊讶地独立于溶剂。构象自由能对溶剂极性,极化性和氢键特性的独立性表明,静电,疏溶剂和范德华分散力不能解释观察到的实验趋势。取而代之的是,实验构象自由能与计算分子轨道能之间的定量关系与硫族元素键合相互作用相一致,硫族元素键合相互作用主要受(硫代)酰胺供体的孤对(n)与反键之间的n→σ∗轨道离域作用的支配。噻吩或硒基受体的σ∗轨道。有趣的是,无论是直接进行硫族元素···硫族元素还是硫族元素···H-C接触,都通过相同的受体分子轨道表现出稳定作用。我们的结果强调了经常被忽略的轨道离域效应在构象控制和分子识别现象中的重要性。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2017年第42期|15160-15167|共8页
  • 作者单位

    EaStCHEM School of Chemistry, University of Edinburgh, Joseph Black Building, David Brewster Road, Edinburgh, United Kingdom;

    Syngenta, Jealott's Hill International Research Centre, Bracknell, Berkshire, United Kingdom;

    EaStCHEM School of Chemistry, University of Edinburgh, Joseph Black Building, David Brewster Road, Edinburgh, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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