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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Molecular Dynamics Simulations of the Adsorption of Phthalate Esters on Smectite Clay Surfaces
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Molecular Dynamics Simulations of the Adsorption of Phthalate Esters on Smectite Clay Surfaces

机译:蒙脱石粘土表面邻苯二甲酸酯吸附的分子动力学模拟

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摘要

The partitioning of organic contaminants between water and solid surfaces is a key process controlling their fate and transport in natural environments. A novel methodology was developed to predict the adsorption of organic contaminants by smectite clay minerals (high specific surface area adsorbents abundant in natural soils) using molecular dynamics (MD) simulations. The methodology models a stack of flexible Ca-montmorillonite lamellae in direct contact with a bulk aqueous reservoir and uses the metadynamics technique to facilitate the exploration of the free energy landscape. The methodology was tested and validated in the case of six phthalate esters, widely used chemical plasticizers with endocrine disrupting properties. Simulation predictions reveal strong phthalate adsorption, especially for the larger and more hydrophobic phthalates. Predicted partition coefficients (K-d values) are consistent with collected batch experimental data. Adsorption was observed on both the exterior basal surfaces and within the interlayer nanopore, with phthalate molecules predominately adopting a flat orientation on the clay surface. Intercalation was also detected in complementary X-ray diffraction (XRD) experiments. A strong inverse relationship between extent of adsorption and clay surface charge density was observed, as phthalate molecules preferentially occupied the more hydrophobic uncharged patches on each surface. Detailed analysis of the free energy of adsorption revealed that phthalate affinity for the clay surface results from a small favorable van der Waals contribution and a large favorable entropic contribution. Overall, this research demonstrates the substantial affinity of smectite clays for phthalate esters and establishes a computational methodology capable of predicting the water clay partition coefficients of organic contaminants, a key parameter in environmental fate and transport models.
机译:水和固体表面之间有机污染物的分区是控制自然环境中的命运和运输的关键过程。开发了一种新颖的方法,以预测使用分子动力学(MD)模拟的蒙脱石粘土矿物(自然土壤中丰富的高比表面积吸附剂)对有机污染物的吸附。该方法模拟了一堆柔性Ca-Montmorillonite Lamellae,直接与散装水库直接接触,并采用Metadynamics技术促进自由能景观的探索。在六个邻苯二甲酸酯的情况下测试和验证了该方法,广泛使用具有内分泌破坏性质的化学增塑剂。模拟预测揭示了强邻苯二甲酸盐的吸附,尤其是对于较大和更疏水性邻苯二甲酸盐。预测分区系数(K-D值)与收集的批量实验数据一致。在外部基础表面和层间纳米孔内观察到吸附,邻苯二甲酸酯分子主要采用粘土表面上的扁平取向。在互补的X射线衍射(XRD)实验中也检测嵌入。观察到吸附和粘土表面电荷密度之间的强度反比关系,因为邻苯二甲酸酯分子优先占据每个表面上的疏水性没有充电的贴剂。详细分析吸附的自由能显示粘土表面的邻苯二甲酸酯亲和力由小良好的范德华贡献和大的有利熵贡献产生。总体而言,该研究证明了蒙脱石粘土对邻苯二甲酸酯的实质性亲和力,并建立了能够预测有机污染物的水粘土分配系数的计算方法,是环境命运和运输模型的关键参数。

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