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首页> 外文期刊>Fresenius environmental bulletin >BIOSORPTIVE REMOVAL OF NICKEL(II) IONS FROM AQUEOUS SOLUTIONS BY HASS AVOCADO (PERSEA AMERICANA MILL. VAR. HASS) SHELL AS AN EFFECTIVE AND LOW-COST BIOSORBENT
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BIOSORPTIVE REMOVAL OF NICKEL(II) IONS FROM AQUEOUS SOLUTIONS BY HASS AVOCADO (PERSEA AMERICANA MILL. VAR. HASS) SHELL AS AN EFFECTIVE AND LOW-COST BIOSORBENT

机译:HASS AVOCADO(PERSEA AMERICANA MILL。VAR。HASS)从水溶液中对镍(II)离子的生物去除性作为一种有效且低成本的生物

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This research work describes the utilization of Hass avocado shell (HAS), i.e., a waste material generated in large quantities from the fruit consumption, to detoxify and remove divalent nickel [Ni(II)] ions from aqueous solutions via biosorption. Batch studies reveal that the Ni(II) biosorption capacity of HAS is dependent on operating variables, such as solution pH, contact time and initial Ni(II) concentration. Ni(II) biosorption increases with increasing solution pH, shaking contact time and initial metal concentration. The Ni(II) biosorption kinetics is well described by the pseudo-second order model, whereas the Langmuir isotherm model best describes the Ni(II) equilibrium biosorption data. The Langmuir isotherm model predicts a maximum biosorption capacity of 126.3 mg g-1, which adequately matches the experimental value of Ni(II) biosorption capacity at equilibrium (107.26 mg g-1), and a biosorption equilibrium constant of 0.0124 L mg-1, which indicates that the biosorption of Ni(II) ions onto HAS is favorable. Fourier transform infrared spectroscopy (FTIR) shows that the carboxyl and aromatic functional groups on the HAS surface could be the potential biosorption sites for Ni(II) biosorption. The present study proves that HAS can be used as an effective, low-cost and eco-friendly biosorbent to remediate Ni(II)-contaminated water and wastewater.
机译:这项研究工作描述了利用Hass鳄梨壳(HAS),即从水果消费中大量产生的废料,通过生物吸附来解毒和去除水溶液中的二价镍[Ni(II)]离子。批处理研究表明,HAS的Ni(II)生物吸附能力取决于操作变量,例如溶液的pH值,接触时间和初始Ni(II)浓度。 Ni(II)的生物吸附随着溶液pH值,摇动接触时间和初始金属浓度的增加而增加。准二级模型很好地描述了Ni(II)的生物吸附动力学,而Langmuir等温线模型最能描述Ni(II)平衡的生物吸附数据。 Langmuir等温线模型预测最大生物吸附量为126.3 mg g-1,与平衡状态下的Ni(II)生物吸附量的实验值(107.26 mg g-1)充分匹配,生物吸附平衡常数为0.0124 L mg-1 ,表明Ni(II)离子在HAS上的生物吸附是有利的。傅里叶变换红外光谱(FTIR)表明,HAS表面的羧基和芳族官能团可能是Ni(II)生物吸附的潜在生物吸附位点。本研究证明,HAS可以作为一种有效,低成本和环保的生物吸附剂,用于修复被Ni(II)污染的水和废水。

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