Department of Chemistry, University of Puerto Rico, Rio Piedras Campus, San Juan, Puerto Rico 00931, USA.
J Mol Model. 2011 Dec;17(12):3309-18. doi: 10.1007/s00894-011-1015-6. Epub 2011 Mar 4.
In the past several years, halogen bonds have been shown to be relevant in crystal engineering and biomedical applications. One of the reasons for the utility of these types of noncovalent interactions in the development of, for example, pharmaceutical ligands is that their strengths and geometric properties are very tunable. That is, substitution of atoms or chemical groups in the vicinity of a halogen can have a very strong effect on the strength of the halogen bond. In this study we investigate halogen-bonding interactions involving aromatically-bound halogens (Cl, Br, and I) and a carbonyl oxygen. The properties of these halogen bonds are modulated by substitution of aromatic hydrogens with fluorines, which are very electronegative. It is found that these types of substitutions have dramatic effects on the strengths of the halogen bonds, leading to interactions that can be up to 100% stronger. Very good correlations are obtained between the interaction energies and the magnitudes of the positive electrostatic potentials (σ-holes) on the halogens. Interestingly, it is seen that the substitution of fluorines in systems containing smaller halogens results in electrostatic potentials resembling those of systems with larger halogens, with correspondingly stronger interaction energies. It is also shown that aromatic fluorine substitutions affect the optimal geometries of the halogen-bonded complexes, often as the result of secondary interactions.
在过去的几年中,卤键在晶体工程和生物医学应用中被证明是相关的。这些类型的非共价相互作用在例如药物配体的开发中具有实用性的原因之一是,它们的强度和几何性质非常可调。也就是说,在卤附近的原子或化学基团的取代可以对卤键的强度产生非常强的影响。在这项研究中,我们研究了涉及芳基结合的卤素(Cl、Br 和 I)和羰基氧的卤键相互作用。这些卤键的性质通过用非常电负性的氟取代芳族氢来调节。结果发现,这些类型的取代对卤键的强度有显著影响,导致相互作用强度最高可达 100%。在相互作用能和卤素上正静电势(σ 空穴)的大小之间获得了非常好的相关性。有趣的是,人们发现,在含有较小卤素的系统中取代氟会导致静电势类似于含有较大卤素的系统,相应地具有更强的相互作用能。还表明,芳香族氟取代会影响卤键合配合物的最佳几何形状,这通常是次级相互作用的结果。