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Reductive dissolution by waste newspaper for enhanced meso-acidophilic bioleaching of copper from low grade chalcopyrite: A new concept of biohydrometallurgy

机译:废报纸的还原溶解,可增强低品位黄铜矿中铜嗜酸性的生物浸出:生物湿法冶金的新概念

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摘要

Dumping of low-grade chalcopyrite encompasses several environmental problems. Despite slow dissolution rate, meso-acidophilic bioleaching is preferred for the extraction of copper from such ores. In the present study, meso-acidophilic bioleaching of a low-grade chalcopyrite in the presence of an acid-processed waste newspaper (PWp) is discussed for the first time. The study illustrated a strong catalytic response of PWp with enhanced bio-recovery of copper from acid-conditioned chalcopyrite. A maximum of 99.13% copper recovery (036% Cu dissolution/day) was obtained in 6 days of bioleaching in the presence of 2 gL(-1) PWp in contrast to only 5.7% copper in its absence. FTIR analysis of bioleached residues revealed similar spectral patterns to the original acid-conditioned ore in the presence of PWp, thus indicating less development of passivation layer which was also confirmed through a complementary Raman characterization of the bioleached residues. Further, a reaction mechanism (chemistry) was proposed suggesting the possible role of PWp as the electron donor under oxygen limiting conditions which facilitated microbial reduction of Fe (III). The resulting biochemical changes provided an energy source for the bacteria, thus allowing free flow of electrons through the ore surface, thus contributing towards enhanced bioleaching of copper. (C) 2015 Elsevier B.V. All rights reserved.
机译:低品位黄铜矿的倾销涉及几个环境问题。尽管溶解速率较慢,但中温嗜酸生物浸出优选用于从此类矿石中提取铜。在本研究中,首次讨论了在酸处理废报纸(PWp)存在下低品位黄铜矿的中嗜酸性生物浸出。这项研究表明,PWp具有很强的催化作用,并能增强从酸性条件黄铜矿中铜的生物回收率。在存在2 gL(​​-1)PWp的情况下,经过6天的生物浸提,最多可获得99.13%的铜回收率(036%的铜溶解/天),而在不存在铜的情况下,只有5.7%的铜回收率。生物浸出残渣的FTIR分析显示,与存在PWp时原始酸处理矿石相似的光谱模式,因此表明钝化层的形成较少,这也通过生物浸出残渣的互补拉曼表征得到了证实。此外,提出了一种反应机理(化学),表明在限制氧的条件下PWp作为电子给体的可能作用,该条件促进了微生物对Fe(III)的还原。由此产生的生化变化为细菌提供了能源,从而使电子自由流过矿石表面,从而有助于增强铜的生物浸出。 (C)2015 Elsevier B.V.保留所有权利。

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