首页> 外文期刊>Journal of Colloid and Interface Science >In situ ATR-FTIR and surface complexation modeling studies on the adsorption of dimethylarsinic acid and p-arsanilic acid on iron-(oxyhydr)oxides
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In situ ATR-FTIR and surface complexation modeling studies on the adsorption of dimethylarsinic acid and p-arsanilic acid on iron-(oxyhydr)oxides

机译:原位ATR-FTIR和表面络合模型研究二甲基ar啶酸和对-茴香酸在氧化铁(羟基氧化物)上的吸附

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摘要

Arsenic is an element that exists naturally in many rocks and minerals around the world. It also accumulates in petroleum, shale, oil sands, and coal deposits as a result of biogeochemical processes, and it has been found in fly ash from the combustion of solid biofuels. Arsenic compounds in their organic and inorganic forms pose both a health and an environmental risk, and continue to be a challenge to the energy industry. The environmental fate and removal technologies of arsenic compounds are controlled to a large extent by their surface interactions with inorganic and organic adsorbents. We report thermodynamic binding constants, Kbinding, from applying the triple-layer surface complexation model to adsorption isotherm and pH envelope data for dimethylarsinic acid (DMA) and p-arsanilic acid (p-AsA) on hematite and goethite. Ligand exchange reactions were constructed based on the interpretation of ATR-FTIR spectra of DMA and p-AsA surface complexes. Surface coverage of adsorbates was quantified in situ from the spectral component at 840cm-1. The best fit to the DMA adsorption data was obtained using outer-sphere complex formation, whereas for p-AsA, the best fit was obtained using two monodentate inner-sphere surface complexes. The significance of the results is discussed in relation to improving modeling tools used by environmental regulators and the energy sector for optimum control of arsenic content in fuels.
机译:砷是世界上许多岩石和矿物中天然存在的元素。由于生物地球化学过程,它也积聚在石油,页岩,油砂和煤沉积物中,并且已经从燃烧固体生物燃料的粉煤灰中发现了它。有机和无机形式的砷化合物对健康和环境均构成威胁,并继续对能源行业构成挑战。砷化合物的环境命运和去除技术在很大程度上受其与无机和有机吸附剂的表面相互作用的控制。我们报道了从三层表面络合模型到赤铁矿和针铁矿上的二甲基ar氨酸(DMA)和对砷酸(p-AsA)的吸附等温线和pH包络数据的热力学结合常数Kbinding。基于对DMA和p-AsA表面复合物的ATR-FTIR光谱的解释,构建了配体交换反应。从840cm-1处的光谱分量就地定量吸附物的表面覆盖率。 DMA吸附数据的最佳拟合是使用外球络合物形成的,而p-AsA的最佳拟合是使用两个单齿内球表面络合物的。讨论了有关结果的意义,涉及改进环境监管机构和能源部门用于最佳控制燃料中砷含量的建模工具。

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