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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Density Functional Theory Calculations on the Complexation of p-Arsanilic Acid with Hydrated Iron Oxide Clusters: Structures, Reaction Energies, and Transition States
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Density Functional Theory Calculations on the Complexation of p-Arsanilic Acid with Hydrated Iron Oxide Clusters: Structures, Reaction Energies, and Transition States

机译:对芳族茴香酸与水合氧化铁团簇络合的密度泛函理论计算:结构,反应能和过渡态

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摘要

Aromatic organoarsenicals, such as p-arsanilic acid (pAsA), are still used today as feed additives in the poultry and swine industries in developing countries. Through the application of contaminated litter as a fertilizer, these compounds enter the environment and interact with reactive soil components such as iron and aluminum oxides. Little is known about these surface interactions at the molecular level. We report density functional theory (DFT) calculations on the energies, optimal geometries, and vibrational frequencies for hydrated pAsA/ iron oxide complexes, as well as changes in Gibbs free energy, enthalpy, and entropy for various types of ligand exchange reactions leading to both inner- and outer-sphere complexes. Similar calculations using arsenate are also shown for comparison, along with activation barriers and transition state geometries between inner-sphere complexes. Minimum energy calculations show that the formation of inner- and outer-sphere pAsA/iron oxide complexes is thermodynamically favorable, with the monodentate mononuclear complexes being the most favorable. Interatomic As-Fe distances are calculated to be between 3.3 and 3.5 ? for inner-sphere complexes and between 5.2 and 5.6 ? for outer-sphere complexes. In addition, transition state calculations show that activation energies greater than 23 kJ/mol are required to form the bidentate binuclear pAsA/iron oxide complexes, and that formation of arsenate bidentate binuclear complexes is thermodynamically -rather than kinetically- driven. Desorption thermodynamics using phosphate ions show that reactions are most favorable using HPO_4~(2-) species. The significance of our results for the overall surface complexation mechanism of pAsA and arsenate is discussed.
机译:如今,发展中国家的家禽和养猪业仍在使用芳族有机砷,例如对砷酸(pAsA)作为饲料添加剂。通过将受污染的垃圾用作肥料,这些化合物进入环境并与活性土壤成分(例如铁和氧化铝)相互作用。对于这些在分子水平上的表面相互作用知之甚少。我们报告了密度泛函理论(DFT)对水合pAsA /氧化铁复合物的能量,最佳几何形状和振动频率的计算,以及各种配体交换反应的吉布斯自由能,焓和熵的变化,导致两者内外圈复合体。为了比较,还显示了使用砷酸盐的类似计算,以及内层复合物之间的活化势垒和过渡态几何结构。最小能量计算表明,内圈和外圈pAsA /氧化铁配合物的形成在热力学上是有利的,单齿单核配合物是最有利的。原子间As-Fe距离经计算在3.3至3.5?之间。对于内球复合物,在5.2和5.6之间?用于外球体。另外,过渡态计算表明,形成双齿双核pAsA /氧化铁复合物需要大于23 kJ / mol的活化能,并且砷化双齿双核复合物的形成是热力学而非动力学驱动的。使用磷酸根离子的解吸热力学表明,使用HPO_4〜(2-)物种最有利于反应。讨论了我们的结果对于pAsA和砷酸盐的整体表面络合机理的意义。

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