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首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Reduction of uranium(VI) under sulfate-reducing conditions in the presence of Fe(III)-(hydr)oxides
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Reduction of uranium(VI) under sulfate-reducing conditions in the presence of Fe(III)-(hydr)oxides

机译:在Fe(III)-(氢)氧化物存在下,在硫酸盐还原条件下还原铀(VI)

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Hexavalent uranium [U(VI)] dissolved in a modified lactate-C medium was treated under anoxic conditions with a mixture of an Fe(III)-(hydr)oxide mineral (hematite, goethite, or ferrihydrite) and quartz. The mass of Fe(Ill)-(hydr)oxide mineral was varied to give equivalent Fe(Ill)-mineral surface areas. After equilibration, the U(VI)-mineral suspensions were inoculated with sulfate-reducing bacteria, Desulfovibrio desulfuricans G20. Inoculation of the suspensions containing sulfate-limited medium yielded significant G20 Growth, alone, with concomitant reduction of sulfate and U(VI) from solution. With lactate-limited medium, however, some of the uranium that had been removed from solution was resolubilized in the hematite treatments and. to a lesser extent, in the goethite treatments, once the lactate was depleted. No resolubilization was observed in the lactate-limited ferrihydrite treatment even after a prolonged incubation of 4 months. Uranium resolubilization was attributed to reoxidation of the uraninite by Fe(III) present in the (hydr)oxide phases. Analysis by U L-3-edge XANES spectroscopy of mineral specimens sampled at the end of the experiments yielded spectra similar to that of uraninite, but having distinct features, notably a much more intense and slightly broader white line consistent with precipitation of nanometer-sized particles. The XANES spectra thus provided strong evidence for SRB-promoted removal of U(VI) from solution by reductive precipitation of uraninite. Consequently, our results suggest that SRB mediate reduction of soluble U(VI) to an insoluble U(IV) oxide, so long as a suitable electron donor is available. Depletion of the electron donor may result in partial reoxidation of the U(IV) to soluble U(VI) species when the surfaces of crystalline Fe(III)(hydr)oxides are incompletely reduced. Copyright (C) 2004 Elsevier Ltd.
机译:在缺氧条件下,用Fe(III)-(氢)氧化物矿物(赤铁矿,针铁矿或三水铁矿)和石英的混合物处理溶解在改性乳酸-C介质中的六价铀[U(VI)]。改变Fe(III)-(氢)氧化物矿物的质量,以得到等效的Fe(III)-矿物表面积。平衡后,用还原硫酸盐的细菌Desulfovibrio desulfuricans G20接种U(VI)-矿物悬浮液。单独接种含有硫酸盐受限培养基的悬浮液,可显着提高G20的生长,并伴随溶液中硫酸盐和U(VI)的减少。但是,在乳酸限制的培养基中,从溶液中除去的一些铀在赤铁矿处理中再溶解。在较少的针铁矿处理中,一旦乳酸耗尽。即使经过4个月的长时间孵育,在乳酸盐限制的亚铁酸盐处理中也未观察到再溶解。铀的再溶解归因于铀矿被(氢氧化)氧化物相中的Fe(III)再氧化。通过U L-3-edge XANES光谱对实验结束时采集的矿物标本进行分析,得出的光谱类似于铀矿的光谱,但具有鲜明的特征,尤其是强度更高,宽度稍宽的白线,与纳米级沉淀相一致。粒子。因此,XANES光谱提供了有力的证据,表明SRB促进了尿素的还原沉淀,从溶液中去除了U(VI)。因此,我们的结果表明,只要有合适的电子供体,SRB就能将可溶性U(VI)还原为不溶性U(IV)氧化物。当结晶的Fe(III)(氢)氧化物的表面未完全还原时,电子供体的耗尽可能导致U(IV)部分重新氧化为可溶性U(VI)物质。版权所有(C)2004 Elsevier Ltd.

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