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首页> 外文期刊>Applied Geochemistry: Journal of the International Association of Geochemistry and Cosmochemistry >Simultaneous oxidation of arsenic and antimony at low and circumneutral pH, with and without microbial catalysis
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Simultaneous oxidation of arsenic and antimony at low and circumneutral pH, with and without microbial catalysis

机译:在有和没有微生物催化的情况下,在低pH和周围pH下同时氧化砷和锑

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摘要

Arsenic and Sb are common mine-water pollutants and their toxicity and fate are strongly influenced by redox processes. In this study, simultaneous Fe(II), As(III) and Sb(III) oxidation experiments were conducted to obtain rates under laboratory conditions similar to those found in the field for mine waters of both low and circumneutral pH. Additional experiments were performed under abiotic sterile conditions to determine the biotic and abiotic contributions to the oxidation processes. The results showed that under abiotic conditions in aerated Fe(III)-H _2SO _4 solutions, Sb(III) oxidizes slightly faster than As(III). The oxidation rates of both elements were accelerated by increasing As(III), Sb(III), Fe(III), and Cl ~- concentrations in the presence of light. For unfiltered circumneutral water from the Giant Mine (Yellowknife, NWT, Canada), As(III) oxidized at 15-78μmol/L/h whereas Sb(III) oxidized at 0.03-0.05μmol/L/h during microbial exponential growth. In contrast, As(III) and Sb(III) oxidation rates of 0.01-0.03 and 0.01-0.02μmol/L/h, respectively, were obtained in experiments performed with acid unfiltered mine waters from the Iberian Pyritic Belt (SW Spain). These results suggest that the Fe(III) formed from microbial oxidation abiotically oxidized As(III) and Sb(III). After sterile filtration of both mine water samples, neither As(III), Sb(III), nor Fe(II) oxidation was observed. Hence, under the experimental conditions, bacteria were catalyzing As and Sb oxidation in the Giant Mine waters and Fe oxidation in the acid waters of the Iberian Pyrite Belt.
机译:砷和锑是常见的矿井水污染物,其毒性和命运受氧化还原过程的强烈影响。在这项研究中,同时进行了Fe(II),As(III)和Sb(III)氧化实验,以在实验室条件下获得与田间低pH和周围pH的矿井水相似的速率。在非生物无菌条件下进行了其他实验,以确定生物和非生物对氧化过程的贡献。结果表明,在非生物条件下,在充气的Fe(III)-H _2SO _4溶液中,Sb(III)的氧化速度比As(III)稍快。在光的存在下,通过增加As(III),Sb(III),Fe(III)和Cl〜-的浓度,加速了这两种元素的氧化速率。对于来自巨型矿山(Yellowknife,NWT,加拿大)的未经过滤的环境水,在微生物指数增长期间,As(III)氧化为15-78μmol/ L / h,而Sb(III)氧化为0.03-0.05μmol/ L / h。相比之下,在来自西班牙伊比利亚黄土带的未经过滤的酸性矿井水中进行的实验中,As(III)和Sb(III)的氧化速率分别为0.01-0.03和0.01-0.02μmol/ L / h。这些结果表明,由微生物氧化形成的Fe(III)被非生物氧化了As(III)和Sb(III)。在对两个矿井水样品进行无菌过滤后,均未观察到As(III),Sb(III)和Fe(II)的氧化。因此,在实验条件下,细菌在伊比利亚黄铁矿带的巨矿山水中催化了As和Sb的氧化,在酸性水体中催化了Fe的氧化。

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