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Morphology, Mineralogy, and Solid-Liquid Phase Separation Characteristics of Cu and Zn Precipitates Produced with Biogenic Sulfide

机译:生物硫化物生产的铜和锌沉淀物的形态,矿物学和固液分离特征

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摘要

The morphology, mineralogy, and solid-liquid phase separation of the Cu and Zn precipitates formed with sullide produced in a sulfate-reducing bioreactor were studied at pH 3, 5, and 7. The precipitates formed at pH 7 display faster settling rates, better dewaterability, and higher concentrations of settleable solids as compared to the precipitates formed at pH 3 and 5. These differences were linked to the agglomeration of the sulfidic precipitates and coprecipitation of the phosphate added to the bioreactor influent. The Cu and Zn quenched the intensity of the dissolved organic matter peaks identified by fluorescence-excitation emission matrix spectroscopy, suggesting a binding mechanism that decreases supersaturation, especially at pH 5. X-ray absorption fine structure spectroscopy analyses confirmed the precipitation of Zn-S as sphalerite and Cu-S as covellite in all samples, but also revealed the presence of Zn sorbed on hydroxyapatite. These analyses further showed that CuS structures remained amorphous regardless of the pH, whereas the ZnS structure was more organized at pH 5 as compared to the ZnS formed at pH 3 and 7, in agreement with the cubic sphalerite-type structures observed through scanning electron microscopy at pH 5.
机译:在pH 3、5和7下研究了由硫酸盐还原生物反应器中生成的沙利特形成的Cu和Zn沉淀物的形貌,矿物学和固液相分离。pH7时形成的沉淀物显示出更快的沉降速度,更好与在pH 3和5下形成的沉淀物相比,具有更高的脱水性和更高的可沉降固体浓度。这些差异与硫化物沉淀物的团聚和添加到生物反应器进水中的磷酸盐的共沉淀有关。铜和锌淬灭了通过荧光激发发射矩阵光谱法鉴定的溶解有机物峰的强度,表明结合机制降低了过饱和度,尤其是在pH 5时。X射线吸收精细结构光谱分析证实了Zn-S的沉淀。在所有样品中均以闪锌矿为代表,Cu-S为闪锌矿,但还表明存在吸附在羟基磷灰石上的Zn。这些分析进一步表明,无论pH如何,CuS结构均保持无定形,而与pH 3和7下形成的ZnS相比,ZnS结构在pH 5下更有组织,这与通过扫描电子显微镜观察到的立方闪锌矿型结构一致。在pH 5。

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  • 来源
    《Environmental Science & Technology》 |2014年第1期|664-673|共10页
  • 作者单位

    Pollution Prevention and Resource Recovery Chair Group, UNESCOIHE Institute for Water Education, P.O. Box 3015, 2601 DA Delft, The Netherlands;

    Laboratoire Geomateriaux et Environnement (LGE), Universite Paris-Est Maine la Vallee (UPEMLV), EA 4508, 77454 Marne-la-Vallee, France;

    Pollution Prevention and Resource Recovery Chair Group, UNESCOIHE Institute for Water Education, P.O. Box 3015, 2601 DA Delft, The Netherlands;

    Laboratoire de Mineralogie et de Cosmochimie du Museum (LMCM), UMR CNRS 7202, Museum National d'Histoire Naturelle, 61 rue Buffon, 75005 Paris, France,Department of Geological and Environmental Sciences, Stanford University, Stanford, California 94305, United States;

    DUBBLE at European Synchrotron Radiation Facility, Netherlands Organization for Scientific Research (NWO), BP 220, 38043 Grenoble Cedex 9, France;

    Laboratory of Process and Energy, Delft University of Technology, 2628 CD Delft, The Netherlands;

    Pollution Prevention and Resource Recovery Chair Group, UNESCOIHE Institute for Water Education, P.O. Box 3015, 2601 DA Delft, The Netherlands;

    Pollution Prevention and Resource Recovery Chair Group, UNESCOIHE Institute for Water Education, P.O. Box 3015, 2601 DA Delft, The Netherlands;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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