Adluri Archita N S, Murphy Jennifer N, Tozer Tiffany, Rowley Christopher N
Department of Chemistry, Memorial University of Newfoundland , St. John's, Newfoundland A1B 3X7, Canada.
J Phys Chem B. 2015 Oct 22;119(42):13422-32. doi: 10.1021/acs.jpcb.5b09041. Epub 2015 Oct 12.
Bromomethane (CH3Br) is an acutely toxic environmental pollutant that contributes to ozone depletion. Molecular simulation could be a valuable tool for studying its partitioning and transport in the environment if an accurate molecular model was available. The generalized Amber force field (GAFF), OPLS (optimized potentials for liquid simulations) force field, and CHARMM general force field (CGenFF) were tested for their ability to model the physical properties of liquid bromomethane. The OPLS force field was in fairly good agreement with experiment, while CGenFF and GAFF were significantly in error. The Br Lennard-Jones parameters of the GAFF and CGenFF models were reparameterized, but their radial distribution functions still have significant deviations from those calculated by ab initio molecular dynamics (AIMD). A Drude polarizable force field for bromomethane was parametrized with an off-center positively charged site to represent the C-Br σ-hole. This model is in good agreement with the bulk physical properties and the AIMD RDFs. The modest solubility of bromomethane was reproduced by this model, with dispersion interactions being the dominant water-solute interaction. The water-solute electrostatic interactions are a smaller factor in solubility. This model predicts bromomethane to have a 13 kJ mol(-1) surface excess potential at the water-vapor interface.
溴甲烷(CH₃Br)是一种具有急性毒性的环境污染物,会导致臭氧层损耗。如果有准确的分子模型,分子模拟可能是研究其在环境中分配和传输的有价值工具。对通用琥珀色力场(GAFF)、OPLS(液体模拟优化势)力场和CHARMM通用力场(CGenFF)模拟液态溴甲烷物理性质的能力进行了测试。OPLS力场与实验结果相当吻合,而CGenFF和GAFF则存在显著误差。对GAFF和CGenFF模型的Br Lennard-Jones参数进行了重新参数化,但它们的径向分布函数与从头算分子动力学(AIMD)计算的结果仍有显著偏差。用一个偏离中心的带正电位点对溴甲烷的德鲁德极化力场进行了参数化,以表示C-Br σ空穴。该模型与整体物理性质和AIMD径向分布函数吻合良好。该模型再现了溴甲烷适度的溶解度,其中色散相互作用是水-溶质相互作用的主导因素。水-溶质静电相互作用对溶解度的影响较小。该模型预测溴甲烷在水-气界面处具有13 kJ mol⁻¹的表面过剩势。