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首页> 外文期刊>Geomicrobiology journal >Evaluation of the Biotechnological Potential of Pure and Mixture of Indigenous Iron-Oxidizing Bacteria to Dissolve Trace Metals from Cu Bearing Ore
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Evaluation of the Biotechnological Potential of Pure and Mixture of Indigenous Iron-Oxidizing Bacteria to Dissolve Trace Metals from Cu Bearing Ore

机译:评价纯铁氧化细菌的纯净和混合物的生物技术潜力,从Cu轴承矿石中溶解痕量金属

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This study aimed to investigate the ability of pure and consortia of indigenous iron-oxidizing bacteria to enhance the dissolution of trace metals from Cu and Zn-bearing ore. Three bacterial strains Acidithiobacillus ferrooxidans strain WG101, Leptospirillum ferriphilum strain WG102, Leptospirillum ferrooxidans strain WG103 isolated from Baiyin copper mine, China were used in this study. The biotechnological potential of these indigenous isolates was evaluated both in pure and in consortia to extract cobalt, chromium, and lead from the copper and zinc bearing ore. The sulfur and iron-oxidizing bacterial isolate Acidithiobacillus ferrooxidans strain WG101 exhibited efficient dissolution compared to sole iron-oxidizing Leptospirillum ferriphilum strain WG102, and Leptospirillum ferrooxidans strain WG103. Initial medium pH, pulp density, and temperature were studied as influential parameters in bioleaching carried out by bacterial consortia. The achieved optimum conditions were; initial pH of 1.5, 10% of pulp density, and temperature 30 degrees C with 68.7 +/- 3.9% cobalt, 56.6 +/- 3.9% chromium, and 36 +/- 3.7% lead recovery. Analytical study of oxidation-reduction potential and pH fluctuation were observed during this whole process that shows the metal dissolution efficiency of bacterial consortia. Alterations in spectral bands of processed residues were reported through FTIR analysis compared with control ore sample. Mossbauer spectroscopy analysis showed the influence of bacterial consortia on iron speciation in bioleached samples. The findings confirm that the indigenous acidophilic iron-oxidizing bacterial strains are highly effective in the dissolution of trace elements present in ore samples. This study not only supports the notion that indigenous bacterial strains are highly effectual in metal dissolution but provides the basic vital conditions to upscale the bioleaching technique for metals dissolution.
机译:本研究旨在探讨土着铁氧化细菌的纯和共聚物的能力,以增强Cu和Zn轴承矿石的痕量金属的溶解。三种细菌菌株酸性菌株菌株WG101,左旋摩托锆菌株WG102,从白鑫铜矿中分离出的Leptospirillum ferroxidans菌株WG103,中国均用于本研究。这些本土分离株的生物技术潜力在纯的和分枝中评价,以从铜和含锌矿石中提取钴,铬和引线。与唯一的铁氧化百分之菌菌株WG102相比,硫和铁氧化细菌分离酸酸酐和铁氧化菌菌株WG101表现出有效的溶解,并对百分之叶螺旋状金属菌株WG102进行了有效的溶解。研究了初始培养基,纸浆密度和温度作为细菌结合进行的生物浸出中的影响力。取得的最佳条件;初始pH为1.5,10%的纸浆密度,温度30摄氏度,68.7 +/- 3.9%钴,56.6 +/- 3.9%铬,36 +/- 3.7%铅回收。在整个过程中观察到氧化还原电位和pH波动的分析研究,显示细菌结合的金属溶解效率。通过FTIR分析与对照矿石样品相比,通过FTIR分析报道了加工残留物的光谱带的改变。母脂蛋白光谱分析显示细菌结合对生物浸硼样品中的铁形态的影响。结果证实,本土嗜酸铁氧化细菌菌株在矿石样品中存在的痕量元素的溶解中非常有效。这项研究不仅支持土着细菌菌株在金属溶解中高度有效的观点,而且提供了高档的基本生命条件,以升高的金属溶解。

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