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New Separation Material Obtained from Waste Rapeseed Cake for Copper(II) and Zinc(II) Removal from the Industrial Wastewater

机译:从废油菜蛋糕中获得的新分离材料用于铜(II)和锌(II)从工业废水中去除

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摘要

Rapeseed cake biochar was produced by pyrolysis at 973.15 K for 2 h, in anoxic conditions. Porous structure, specific surface area and die composition of waste rapeseed cake were studied. The specific surface area of rapeseed cake biochar was 166.99 m2·g−1, which exceeded most other biochars reported, which made it an attractive material during wastewater treatment. The SEM study of the material demonstrated a large number of pores formed on the cell wall, with a pore volume Vp = 0.08 cm3·g−1. The results indicate lower aromaticity and increased polarity of the tested material. The observed H/C ratio of 0.29 is similar for activated carbons. Furthermore, sorption properties of the obtained carbon material in relation to copper(II), zinc(II) and arsenic(III) ions were also studied. Moreover, the impact of parameters such as: sorption time, temperature, adsorbate concentration, sorbent mass and solution pH on the efficiency of the adsorption process of the studied cations was also examined. Sorption studies revealed that the sorbent can be successfully used for the separation of Cu(II) and Zn(II) from technological wastewaters. Rapeseed cake biochar exhibits superior Cu(II) adsorption capacity (52.2 mg·g−1) with a short equilibrium time (6 h). The experimental data collected show a high selectivity of the obtained carbon material relative to copper(II) and zinc(II) ions in the presence of arsenic(III) ions.
机译:油菜蛋糕生物炭是通过在973.15k的热解产生2小时,缺氧条件下产生的。研究了废油菜蛋糕的多孔结构,比表面积和模具组成。菜籽蛋糕Biochar的比表面积为166.99m2·g-1,其超过了大多数其他生物炸肉草,其在废水处理过程中使其成为一种有吸引力的材料。对材料的SEM研究表明,在细胞壁上形成了大量形成的孔,孔体积Vp = 0.08cm 3·G-1。结果表明测试材料的芳香性和增加的极性。观察到的H / C比为0.29的活性碳的比例类似。此外,还研究了所得碳材料与铜(II),锌(II)和砷(III)离子的吸附性质。此外,还研究了参数的影响,例如:吸附时间,温度,吸附浓度,吸附剂质量和溶液pH对所研究的阳离子吸附过程的效率。吸附研究表明,吸附剂可以成功地用于从技术废水中分离Cu(II)和Zn(II)。菜籽蛋糕Biochar具有优异的Cu(II)吸附容量(52.2mg·G-1),具有短平衡时间(6小时)。所收集的实验数据显示所得碳材料相对于砷(III)离子存在的铜(II)和锌(II)离子的高选择性。

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