Literature DB >> 18929389

Oxidative removal of aqueous steroid estrogens by manganese oxides.

Lei Xu1, Chao Xu, Meirong Zhao, Yuping Qiu, G Daniel Sheng.   

Abstract

This study investigated the oxidative removal of steroid estrogens from water by synthetic manganese oxide (MnO2) and the factors influencing the reactions. Using 1 x 10(-5)M MnO2 at pH 4, estrone (E1), 17beta-estradiol (E2), estriol (E3) and 17alpha-ethinylestradiol (EE2), all at 4 x 10(-6)M, were rapidly removed within 220 min, indicating the effectiveness of MnO2 as an oxidizing agent towards estrogens. E2 removal increased with decreasing pH over the tested range of 4-8, due most likely to increased oxidizing power of MnO2 and a cleaner reactive surface in acidic solutions. Coexisting metal ions of 0.01 M (Cu(II), Zn(II), Fe(III) and Mn(II)) and Mn(II) released from MnO2 reduction competed with E2 for reactive sites leading to reduced E2 removal. Observed differential suppression on E2 removal may be related to different speciations of metals, as suggested by the MINTEQ calculations, and hence their different adsorptivities on MnO2. By suppressing the metal effect, humic acid substantially enhanced E2 removal. This was attributed to complexation of humic acid with metal ions. With 0.01 M ZnCl2 in solutions containing 1 mg l(-1) humic acid, the binding of humic acid for Zn(II) was determined at 251 mmol g(-1). An in vitro assay using human breast carcinoma MCF-7 cells indicated a near elimination of estrogenic activities without secondary risk of estrogen solutions treated with MnO2. Synthetic MnO2 is therefore a promising chemical agent under optimized conditions for estrogen removal from water. Metal chelators recalcitrant to MnO2 oxidation may be properly used to further enhance the MnO2 performance.

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Year:  2008        PMID: 18929389     DOI: 10.1016/j.watres.2008.09.016

Source DB:  PubMed          Journal:  Water Res        ISSN: 0043-1354            Impact factor:   11.236


  12 in total

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3.  Transformation of bisphenol A by manganese oxide-coated sand.

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5.  Oxidative transformation of carbamazepine by manganese oxides.

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6.  Interactions in Ternary Mixtures of MnO2, Al2O3, and Natural Organic Matter (NOM) and the Impact on MnO2 Oxidative Reactivity.

Authors:  Saru Taujale; Laura R Baratta; Jianzhi Huang; Huichun Zhang
Journal:  Environ Sci Technol       Date:  2016-02-18       Impact factor: 9.028

7.  Oxidative Transformation of Controlled Substances by Manganese Dioxide.

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8.  Competitive Degradation of Steroid Estrogens by Potassium Permanganate Combined with Ultrasound.

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9.  Anoxic conditions are beneficial for abiotic diclofenac removal from water with manganese oxide (MnO2).

Authors:  Wenbo Liu; Nora B Sutton; Huub H M Rijnaarts; Alette A M Langenhoff
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10.  Complete Degradation and Detoxification of Ciprofloxacin by a Micro-/Nanostructured Biogenic Mn Oxide Composite from a Highly Active Mn2+-Oxidizing Pseudomonas Strain.

Authors:  Li Li; Jin Liu; Jie Zeng; Jiaoqing Li; Yongxuan Liu; Xiaowen Sun; Liangzheng Xu; Lin Li
Journal:  Nanomaterials (Basel)       Date:  2021-06-24       Impact factor: 5.076

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