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光催化去除亚硒酸盐和硒酸盐物种:EDTA 的影响和其他工艺变量。

Photocatalytic removal of selenite and selenate species: effect of EDTA and other process variables.

出版信息

Environ Technol. 2014 May-Jun;35(9-12):1091-100. doi: 10.1080/09593330.2013.861857.

Abstract

TiO2-assisted photocatalysis was employed for the removal of aqueous phase selenite and selenate species in conjunction with EDTA as a hole (h+) scavenger. Findings from the binary selenite/EDTA and selenate/EDTA systems showed high selenite and selenate removal at pH 4 and pH 6, with faster removal kinetics noted for the selenite species compared with the selenate species that showed a gradual change over the reaction course. The noted removal of selenite and selenate was attributed to their reduction by the conduction band electrons (e-). The effect of pH studies indicated high selenite, selenate, and EDTA removal in the acidic pH range, with the following specific trend: pH 4 > pH 6 > pH 12. Different from the EDTA studies, the use of thiocyanate alone did not initiate reduction of selenium oxyanions, and hence, its role as a hole scavenger in the present systems was not evident. However, the addition of EDTA to respective selenite/selenate/thiocyanate system at pH 4 did yield near complete removal of selenite and selenate species. The marginal role of thiocyanate as a hole scavenger was attributed to its negligible adsorption onto TiO2 surface. Furthermore, at pH 4 and within 3 h reaction time, enhanced selenate removal was noted with an increase in its initial concentration from 20 to 100 ppm, with near complete selenate removal noted for both cases. In general, findings from the present work indicate that both selenite and selenate can be successfully removed from the aqueous phase employing the TiO2-mediated photocatalysis and h(+)-scavenging agent EDTA.

摘要

采用 TiO2 辅助光催化技术,结合 EDTA 作为空穴 (h+) 清除剂,去除水相中亚硒酸盐和硒酸盐。二元亚硒酸盐/EDTA 和硒酸盐/EDTA 体系的研究结果表明,在 pH 4 和 pH 6 时,亚硒酸盐和硒酸盐的去除率很高,亚硒酸盐的去除动力学更快,而硒酸盐的去除则随着反应过程逐渐变化。亚硒酸盐和硒酸盐的去除归因于它们被导带电子 (e-) 还原。pH 研究的影响表明,在酸性 pH 范围内,亚硒酸盐、硒酸盐和 EDTA 的去除率很高,具体趋势如下:pH 4 > pH 6 > pH 12。与 EDTA 研究不同的是,单独使用硫氰酸盐不能引发硒氧阴离子的还原,因此,它在本体系中作为空穴清除剂的作用不明显。然而,在 pH 4 时,向相应的亚硒酸盐/硒酸盐/硫氰酸盐体系中添加 EDTA 确实可以实现亚硒酸盐和硒酸盐的几乎完全去除。硫氰酸盐作为空穴清除剂的作用微不足道,这归因于其在 TiO2 表面的吸附量可忽略不计。此外,在 pH 4 和 3 h 反应时间内,随着其初始浓度从 20 ppm 增加到 100 ppm,硒酸盐的去除率显著提高,两种情况下的硒酸盐去除率均接近完全。总的来说,本工作的研究结果表明,采用 TiO2 介导的光催化和 h(+) 清除剂 EDTA 可以成功地从水相中去除亚硒酸盐和硒酸盐。

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