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The molecular mechanism of Mo isotope fractionation during adsorption to birnessite

机译:水钠锰矿吸附过程中钼同位素分馏的分子机理

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摘要

Fractionation of Mo isotopes during adsorption to manganese oxides is a primary control on the global ocean Mo isotope budget. Previous attempts to explain what drives the surprisingly large isotope effect δ97/95Modissolved-δ97/95Moadsorbed=1.8‰ have not successfully resolved the fractionation mechanism. New evidence from extended X-ray absorption fine structure analysis and density functional theory suggests that Mo forms a polymolybdate complex on the surfaces of experimental and natural samples. Mo in this polynuclear structure is in distorted octahedral coordination, while Mo remaining in solution is predominantly in tetrahedral coordination as MoO42- Our results indicate that the difference in coordination environment between dissolved Mo and adsorbed Mo is the cause of isotope fractionation. The molecular mechanism of metal isotope fractionation in this system should enable us to explain and possibly predict metal isotope effects in other systems where transition metals adsorb to mineral surfaces.
机译:在吸附到氧化锰过程中,Mo同位素的分馏是全球海洋Mo同位素预算的主要控制因素。先前试图解释是什么驱动了令人惊讶的大同位素效应δ97/95Modissolved-δ97/ 95Moadsorbed = 1.8‰的尝试未能成功解决分馏机理。扩展的X射线吸收精细结构分析和密度泛函理论的新证据表明,Mo在实验和自然样品的表面形成聚钼酸盐络合物。该多核结构中的Mo为八面体配位畸变,而溶液中残留的Mo主要为MoO42-四面体配位。我们的结果表明,溶解的Mo与吸附的Mo之间的配位环境不同是同位素分级的原因。该系统中金属同位素分馏的分子机理应使我们能够解释并可能预测过渡金属吸附到矿物表面的其他系统中的金属同位素效应。

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