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制备与表征用于去除六价铬的双功能 Ti-Fe 高岭土复合材料。

Preparation and characterization of bifunctional Ti-Fe kaolinite composite for Cr(VI) removal.

机构信息

School of Resources and Environmental Engineering, Wuhan University of Technology, Wuhan 430070, China.

School of Resources and Environmental Engineering, Wuhan University of Technology, Wuhan 430070, China.

出版信息

J Colloid Interface Sci. 2015 Mar 15;442:30-8. doi: 10.1016/j.jcis.2014.11.023. Epub 2014 Nov 18.

Abstract

A novel bifunctional Ti-Fe kaolinite composite with excellent adsorption and photocatalytic properties was synthesized by a simple precipitation method. X-ray diffraction analysis and high-resolution transmission electron microscope analysis confirmed the existence of rutile phase TiO2 and amorphous iron in the composite. The specific surface area of the Ti-Fe kaolinite composite is 5.5 times higher than that of the original kaolinite. The composite was used as an adsorbent as well as photocatalyst for Cr(VI) removal. The results indicate that the low pH is favorable to the Cr(VI) removal by the composite and the removal rate of Cr(VI) reached 87% at pH 3.0. Visible light irradiation obviously increased the removal of Cr(VI) by the composite and greatly shortened reaction equilibrium time, which may be attributed to the photocatalytic reduction of Cr(VI) to Cr(III) by TiO2 associated with simultaneous redox cycle of Fe(III)/Fe(II). Various common co-existing ions did not show obvious effects on the removal of Cr(VI) by the composite. The composite exhibited very high stability for the Cr(VI) removal. The adsorption models and thermodynamics of Cr(VI) onto the composite were studied.

摘要

一种具有优异吸附和光催化性能的新型双功能 Ti-Fe 高岭土复合材料通过简单的沉淀法合成。X 射线衍射分析和高分辨率透射电子显微镜分析证实了复合材料中存在锐钛矿相 TiO2 和非晶态铁。Ti-Fe 高岭土复合材料的比表面积比原高岭土高 5.5 倍。该复合材料可用作 Cr(VI)去除的吸附剂和光催化剂。结果表明,低 pH 有利于复合光催化剂去除 Cr(VI),在 pH 3.0 时,Cr(VI)的去除率达到 87%。可见光照射明显提高了复合光催化剂对 Cr(VI)的去除率,并大大缩短了反应平衡时间,这可能归因于 TiO2 光催化还原 Cr(VI)为 Cr(III),同时伴随 Fe(III)/Fe(II)的氧化还原循环。各种常见共存离子对复合光催化剂去除 Cr(VI)没有明显影响。该复合材料对 Cr(VI)去除具有很高的稳定性。研究了 Cr(VI)在复合材料上的吸附模型和热力学。

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