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CooperativeEffects and Optimal Halogen Bonding Motifsfor Self-Assembling Systems

机译:合作社效应和最佳卤素键基序用于自组装系统

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摘要

Halogen bonding, due to its directionality and tunable strength, is being increasingly utilized in self-assembling materials and crystal engineering. Using density functional theory (DFT) and molecular mechanics (OPLS/CM1Ax) calculations, multiply halogen bonded complexes of brominated imidazole and pyridine are investigated along with their potential in construction of self-assembling architectures. Dimers with 1–10 halogen bonds are considered and reveal maximal binding energies of 3–36 kcal/mol. Cooperative (nonadditive) effects are found in complexes that extend both along and perpendicular to the halogen bonding axes, with interaction energies depending on polarization, secondary interactions, and ring spacers. Four structural motifs were identified to yield optimal halogen bonding. For the largest systems, the excellent agreement found between the DFT and OPLS/CM1Ax results supports the utility of the latter approach for analysis and design of self-assembling supramolecular structures.
机译:卤素键由于其方向性和可调强度而被越来越多地用于自组装材料和晶体工程中。使用密度泛函理论(DFT)和分子力学(OPLS / CM1Ax)计算,研究了溴化咪唑和吡啶的多个卤素键合配合物,以及它们在自组装体系结构中的潜力。考虑具有1-10个卤素键的二聚体,其最大结合能为3-36 kcal / mol。在沿着和垂直于卤素键合轴延伸的配合物中发现了协同(非加和)效应,其相互作用能取决于极化,二次相互作用和环间隔基。确定了四个结构基序以产生最佳的卤素键。对于最大的系统,DFT和OPLS / CM1Ax结果之间的出色协议支持了后一种方法在分析和设计自组装超分子结构中的实用性。

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