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Quantum Chemical Study of Arsenic (III, V) Adsorption on Mn-Oxides: Implications for Arsenic(lll) Oxidation

机译:锰氧化物上砷(III,V)吸附的量子化学研究:砷(III)氧化的意义

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摘要

Density functional theory (DFT) calculations were used to investigate As(V) and As(III) surface complex structures and reaction energies on both Mn(III) and Mn(IV) sites in an attempt to better understand As(III) oxidation by birnessite, a layered Mn-dioxide mineral. Edge-sharing dioctahedral Mn(III) and Mn(IV) clusters with different combinations of surface functional groups (>MnOH and >MnOH_2) were employed to mimic pH variability. Results show that As(V) adsorption was more thermodynamically favorable than As(III) adsorption on both Mn(III) and Mn(IV) surface sites under simulated acidic pH conditions. Therefore, we propose that As(V) adsorption inhibits As(III) oxidation by blocking adsorption sites. Under simulated acidic pH conditions, Mn(IV) sites exhibited stronger adsorption affinity than Mn(III) sites for both As(III) and As(V). Overall, we hypothesize that Mn(III) sites are less reactive in terms of As(III) oxidation due to their lower affinity for As(III) adsorption, higher potential to be blocked by As(V) complexes, and slower electron transfer rates with adsorbed As(III). Results from this study offer an explanation regarding the experimental observations of Mn(III) accumulation on birnessite and the long residence time of As(III) adsorption complexes on manganite (r-MnOOH) during As(III) oxidation.
机译:密度泛函理论(DFT)计算用于研究As(V)和As(III)表面复合结构以及在Mn(III)和Mn(IV)位置上的反应能,以试图更好地理解As(III)的氧化水钠锰矿,一种层状二氧化锰矿物。具有不同表面功能基团组合(> MnOH和> MnOH_2)的边缘共享的二八面体Mn(III)和Mn(IV)簇用于模拟pH变异性。结果表明,在模拟酸性pH条件下,As(V)吸附比Mn(III)和Mn(IV)表面位置上的As(III)吸附更具热力学优势。因此,我们建议As(V)吸附通过阻断吸附位点来抑制As(III)氧化。在模拟酸性pH条件下,对于As(III)和As(V)而言,Mn(IV)位点都比Mn(III)位点表现出更强的吸附亲和力。总的来说,我们假设Mn(III)位点在As(III)氧化方面反应性较低,这是因为它们对As(III)的吸附亲和力较低,被As(V)络合物阻止的电势较高以及电子传输速率较慢吸附有As(III)。这项研究的结果提供了关于在锰锌矿上积累Mn(III)的实验观察结果以及在As(III)氧化过程中As(III)吸附络合物在锰矿(r-MnOOH)上停留时间长的解释。

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  • 来源
    《Environmental Science & Technology》 |2009年第17期|6655-6661|共7页
  • 作者单位

    Department of Plant and Soil Sciences, Center for Critical Zone Research, University of Delaware, 152 Townsend Hall, Newark, Delaware 19716;

    DuPont Crop Protection, Stine-Haskell Research Center, Newark, Delaware 19714;

    Department of Geosciences and the Earth and Environmental Systems Institute, The Pennsylvania State University, University Park, Pennsylvania 16802;

    Department of Plant and Soil Sciences, Center for Critical Zone Research, University of Delaware, 152 Townsend Hall, Newark, Delaware 19716;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 14:04:50

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