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The influence of nitrate on the reduction of hexavalent chromium by zero-valent iron nanoparticles in polluted wastewater

机译:硝酸盐对污染废水中零价铁纳米颗粒还原六价铬的影响

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Hexavalent chromium, Cr(VI), still represents in several areas in Europe one of the groundwater pollutants of major concern, mainly due to its high toxicity, even enhanced by the synergic effect in the presence of other groundwater contaminants, such as nitrate. In this work, experimental tests of hexavalent chromium reduction in polluted groundwater in the presence of nitrate by nanoscale zero-valent iron (nZVI) particles are presented and discussed. The effect of nitrate on process mechanism was investigated and a kinetic model was proposed. nZVI produced by iron sulfate heptahydrate reduction with sodium borohydride was stabilized by carboxymethyl cellulose, and added to synthetic solutions at different nitrate contents. Results show that nitrate exerts an adverse effect on Cr(VI) reduction, depending on nZVI/Cr(VI) and Cr(VI)/NO3- ratio. Though hexavalent chromium reduction resulted slightly enhanced at low nitrate concentration (up to 1.5 nZVI/Cr(VI) molar ratio), as a consequence of the increase of the ionic strength of the solution, a significant decrease was observed at high nitrate level (up to a 25% at Cr(VI)/NO3- molar ratio equal to 1.2 with an nZVI/[Cr(VI) + NO3-] molar ratio equal to 1), due to the competitive effect in the reaction with nZVI. In both cases, experimental data were successfully fitted by a pseudo-first-order kinetic until iron surface passivation determined nanoparticles deactivation.
机译:六价铬Cr(VI)在欧洲几个地区仍然是主要关注的地下水污染物之一,这主要是由于其高毒性,甚至在存在其他地下水污染物(例如硝酸盐)的情况下的协同作用也使其进一步增强。在这项工作中,提出并讨论了在硝酸盐存在下通过纳米级零价铁(nZVI)颗粒还原受污染的地下水中六价铬的实验测试。研究了硝酸盐对工艺机理的影响,并建立了动力学模型。通过用硼氢化钠还原七水合硫酸铁生成的nZVI被羧甲基纤维素稳定化,并以不同的硝酸盐含量添加到合成溶液中。结果表明,硝酸盐对Cr(VI)的还原有不利影响,具体取决于nZVI / Cr(VI)和Cr(VI)/ NO3-的比例。尽管在低硝酸盐浓度下(高达1.5 nZVI / Cr(VI)摩尔比),六价铬还原作用略有增强,但由于溶液离子强度的增加,在高硝酸盐水平下观察到显着降低Cr(VI)/ NO3-摩尔比等于1.2,nZVI / [Cr(VI)+ NO3-]摩尔比等于1)时25%(25%),这是由于与nZVI反应的竞争效应。在这两种情况下,实验数据均通过拟一级动力学成功拟合,直到铁表面钝化确定纳米颗粒失活为止。

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