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首页> 外文期刊>Soil Systems >Integrating Density Functional Theory Modeling with Experimental Data to Understand and Predict Sorption Reactions: Exchange of Salicylate for Phosphate on Goethite
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Integrating Density Functional Theory Modeling with Experimental Data to Understand and Predict Sorption Reactions: Exchange of Salicylate for Phosphate on Goethite

机译:用实验数据集成密度泛函理论建模,理解和预测吸附反应:在甲酸盐上磷酸盐的水杨酸盐交换

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Density functional theory (DFT) calculations are a quantum mechanical approach that can be used to model chemical reactions on an atomistic scale. DFT provides predictions on structures, thermodynamics, spectroscopic parameters and kinetics that can be compared against experimentally determined data. This paper is a primer on the basics of utilizing DFT for applications in mineral-water interfaces. In our case-study, we use DFT to model the surface complexes of phosphate and salicylate adsorbed onto the (101) and (210) surfaces of -FeOOH (goethite), as an example of combining DFT and experiment. These three components are important in the phosphorus-organic matter interactions in soils, and by comparing the energies of the two surface complexes, the exchange energy of salicylate for phosphate onto goethite can be estimated. The structures of the surface complexes are predicted and the resulting vibrational frequencies calculated based on these structures are compared to previous observations. Upon verification of reasonable surface complex models, the potential energy of exchanging salicylate for phosphate is calculated and shown to be significantly exothermic. This model result is consistent with observations of plant exudates, such as salicylate freeing adsorbed phosphate in soils under P-limited conditions.
机译:密度泛函理论(DFT)计算是一种量子机械方法,可用于模拟原子尺度的化学反应。 DFT在可以与实验确定的数据进行比较的结构,热力学,光谱参数和动力学提供预测。本文是利用DFT在矿泉水接口中应用的基础知识的底漆。在我们的案例研究中,我们使用DFT将磷酸盐和水杨酸盐的表面复合物模拟吸附在-FeOh(Goethite)的(Goethite)表面上的(101)和(210)表面,作为组合DFT和实验的示例。这三种组分在土壤中的磷 - 有机物相互作用中是重要的,并且通过比较两个表面配合物的能量,可以估计磷酸盐磷酸盐盐的交换能量。预测表面复合物的结构,并将基于这些结构计算的所得振动频率与先前的观察结果进行比较。在验证合理的表面复杂模型时,计算用于磷酸盐交换水杨酸盐的势能,并显示出显着放热。该模型结果与植物渗出物的观察结果一致,例如在P限制条件下的土壤中的水杨酸盐吸附吸附磷酸盐。

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