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朝向对钙钛矿型二氧化锰中铯吸附的机械理解:分子动力学模拟研究。

Toward a mechanistic understanding of cesium adsorption to todorokite: A molecular dynamics simulation study.

机构信息

Department of Geology, Kangwon National University, Chuncheon 24314, Republic of Korea; Korea Institute of Geoscience and Mineral Resources, Daejeon 34132, Republic of Korea.

Department of Geology, Kangwon National University, Chuncheon 24314, Republic of Korea.

出版信息

J Hazard Mater. 2022 Aug 15;436:129250. doi: 10.1016/j.jhazmat.2022.129250. Epub 2022 May 30.

Abstract

A mechanistic understanding of cesium (Cs) adsorption to soil mineral phases is essential for effective mitigation of Cs mobility in the subsurface environment. Todorokite, a common tunnel-structured manganese oxide in soil, exhibits sorption capacity for Cs comparable to the capacities of clay minerals. However, the adsorption sites and molecular species of Cs adsorbed to todorokite remain uncertain in comparison with those of clay minerals. In this study, we explored adsorption of Cs to hydrated todorokite surfaces via atomistic molecular dynamics (MD) simulations. We performed the first MD simulations based on atomic pair potentials for Mn-oxide edge surfaces interfaced with an aqueous solution. MD simulations predicted that Cs forms only inner-sphere (IS) complexes within todorokite tunnels; however, Cs forms both IS and outer-sphere (OS) complexes at the external (010) and (100)/(001) external surfaces. On the (010) surface, the positions between IS and OS complexes of Cs were interchangeable during MD simulations. Detailed molecular structures of IS and OS Cs surface complexes are compared to those of Cs in an aqueous solution. The current MD simulation results can be used as an atomistic structural proxy for spectroscopic analysis of adsorbed metal speciation and surface complexation modeling of metal adsorption to Mn oxides.

摘要

对铯(Cs)在土壤矿物相中吸附的机理理解对于有效减轻地下环境中 Cs 迁移性至关重要。在土壤中, 常见的隧道结构锰氧化物是绿脱石,其对 Cs 的吸附能力可与粘土矿物的吸附能力相媲美。然而,与粘土矿物相比,对于吸附在绿脱石上的 Cs 的吸附位点和分子种类仍存在不确定性。在本研究中,我们通过原子分子动力学(MD)模拟探索了 Cs 在水合绿脱石表面上的吸附。我们进行了首次基于原子对势的 Mn-氧化物边缘表面与水溶液界面的 MD 模拟。MD 模拟预测 Cs 在绿脱石隧道内仅形成内圈(IS)配合物;然而,Cs 在外部(010)和(100)/(001)外表面上同时形成 IS 和外圈(OS)配合物。在(010)表面上,IS 和 OS Cs 表面配合物的位置在 MD 模拟过程中可以互换。IS 和 OS Cs 表面配合物的详细分子结构与水溶液中 Cs 的结构进行了比较。目前的 MD 模拟结果可作为吸附金属形态的光谱分析和 Mn 氧化物上金属吸附的表面络合建模的原子结构近似。

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