Curtin Institute for Computation, The Institute for Geoscience Research (TIGeR), School of Molecular and Life Sciences, Curtin University, GPO Box U1987, 6845 Perth, Western Australia, Australia.
Phys Chem Chem Phys. 2021 Dec 15;23(48):27253-27265. doi: 10.1039/d1cp04226b.
The interaction of organic molecules with mineral systems is relevant to a wide variety of scientific problems both in the environment and minerals processing. In this study, the coordination of small organics that contain the two most relevant functional groups for biomineralisation of calcium carbonate, namely carboxylate and ammonium, with the corresponding mineral ions are examined in aqueous solution. Specifically, two force fields have been examined based on rigid-ion or polarisable models, with the latter being within the AMOEBA formalism. Here the parameters for the rigid-ion model are determined to target the accurate reproduction of the hydration structure and solvation thermodynamics, while both force fields are designed to be compatible with the corresponding recently published models for aqueous calcium carbonate. The application of these force fields to ion pairing in aqueous solution is studied in order to quantitatively determine the extent of association.
有机分子与矿物系统的相互作用与环境和矿物加工中广泛的科学问题都有关联。在这项研究中,研究了含有对碳酸钙生物矿化最相关的两种官能团,即羧酸盐和铵盐的小分子有机物与相应矿物离子在水溶液中的配位情况。具体而言,检查了两种基于刚性离子或极化模型的力场,后者基于 AMOEBA 形式主义。这里,刚性离子模型的参数被确定为以准确再现水合结构和溶剂化热力学为目标,而这两种力场都被设计为与最近发表的用于水相碳酸钙的相应模型兼容。这些力场在水溶液中离子配对的应用被研究,以便定量确定缔合的程度。