首页> 外文期刊>Journal of chemical theory and computation: JCTC >Dynamics and Thermodynamics of Ibuprofen Conformational Isomerism at the Crystal/Solution Interface
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Dynamics and Thermodynamics of Ibuprofen Conformational Isomerism at the Crystal/Solution Interface

机译:水晶/解决方案界面布洛芬构象异构体的动态与热力学

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Conformational flexibility of molecules involved in crystal growth and dissolution is rarely investigated in detail and usually considered to be negligible in the formulation of mesoscopic models of crystal growth. In this work, we set out to investigate the conformational isomerism of ibuprofen as it approaches and is incorporated in the morphologically dominant {100} crystal face, in a range of different solvents: water, 1-butanol, toluene, cyclohexanone, cyclohexane, acetonitrile, and trichloromethane. To this end, we combine extensive molecular dynamics and well-tempered metadynamics simulations to estimate the equilibrium distribution of conformers, compute conformer-conformer transition rates, and extract the characteristic relaxation time of the conformer population in solution, adsorbed at the solid/liquid interface, incorporated in the crystal in contact with the mother solution, and in the crystal bulk. We find that, while the conformational equilibrium distribution is weakly dependent on the solvent, relaxation times are instead significantly affected by it. Furthermore, differences in the relaxation dynamics are enhanced on the crystal surface, where conformational transitions become slower and specific conformational transition pathways are hindered. This leads us to observe that the dominant mechanisms of conformational transition can also change significantly moving from the bulk solution to the crystal interface, even for a small molecule with limited conformational flexibility such as ibuprofen. Our findings suggest that understanding conformational flexibility is key to provide an accurate description of the solid/liquid interface during crystal dissolution and growth, and therefore, its relevance should be systematically assessed in the formulation of mesoscopic growth models.
机译:在晶体生长的介术模型的制定中,很少详细研究晶体生长和溶解中所涉及的分子的构象灵活性。在这项工作中,我们阐述了在一系列不同溶剂的形态主导{100}晶面中探讨了布洛芬的构象异构,在不同溶剂中:水,1-丁醇,甲苯,环己酮,环己烷,乙腈和三氯甲烷。为此,我们结合了广泛的分子动力学和升高的元动力学模拟,以估算符合子的平衡分布,计算符合材料 - 适形分子的转变率,并提取溶液中填充剂群体的特征松弛时间,吸附在固体/液体界面处,掺入与母液接触的晶体中,并在晶体堆积中。我们发现,虽然构象平衡分布弱依赖于溶剂,但弛豫时间恰好受其影响。此外,在晶体表面上增强了松弛动力学的差异,其中构象过渡变得更慢,并且特定的构象过渡途径被阻碍。这导致我们观察到构象过渡的主导机制也可以改变从散装溶液到晶体界面的显着变化,即使对于具有有限的构象灵活性的小分子,例如布洛芬。我们的研究结果表明,了解构象灵活性是在晶体溶解和生长期间提供固体/液面界面的准确描述,因此,在介观介面生长模型的制剂中应该系统地评估其相关性。

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