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评估离子液体对花生粕生物吸附潜力的影响:实验与理论研究

Evaluating the Effect of Ionic Liquid on Biosorption Potential of Peanut Waste: Experimental and Theoretical Studies.

作者信息

Bibi Amna, Naz Sadia, Uroos Maliha

机构信息

Centre for Research in Ionic Liquids, School of Chemistry, University of the Punjab, 54590 Lahore, Pakistan.

出版信息

ACS Omega. 2021 Aug 20;6(34):22259-22271. doi: 10.1021/acsomega.1c02957. eCollection 2021 Aug 31.

Abstract

Peanut skin having polyphenols as major constituents is a natural, abundant, and environmentally friendly potent biosorbent for aquatic pollutants such as heavy metals. Its natural potential can be enhanced several times by treating it with ionic liquids-the green solvents. This report presents a complete study on biosorption of divalent cadmium ions using ionic liquid-treated peanut skin. Initially, both peanut biomasses, skin and shells, were tested, and peanut skin was used for thorough experimentation because of its higher adsorption potential ( values). Ionic liquids are highly green and designed solvents with vast adjustable striking features such as high thermal and chemical stability, insignificant vapor pressure, wide electrochemical assortment, non-volatility, non-flammability, less toxicity, and high recycling ability. Peanut skin after treatment with ionic liquids was characterized via FTIR, TGA, SEM, and XRD. The biosorption process was optimized with respect to time, temperature, metal ion concentrations, agitation speed, pH, and adsorbent dose. Data obtained were interpreted by kinetic, isothermal, and thermodynamic models. The biosorbent and ionic liquid both are regenerated and recycled up to three times, so cost effectiveness is a promising thing.

摘要

以多酚为主要成分的花生皮是一种天然、丰富且环保的高效生物吸附剂,可用于吸附水中的重金属等污染物。通过用离子液体(绿色溶剂)处理,其天然潜力可提高数倍。本报告介绍了关于使用离子液体处理过的花生皮对二价镉离子进行生物吸附的完整研究。最初,对花生的两种生物质(花生皮和花生壳)都进行了测试,由于花生皮具有更高的吸附潜力( 值),因此将其用于全面实验。离子液体是高度绿色且经过设计的溶剂,具有许多可调节的显著特性,如高热稳定性和化学稳定性、极低的蒸气压、广泛的电化学范围、不挥发性、不可燃性、低毒性以及高回收能力。用离子液体处理后的花生皮通过傅里叶变换红外光谱(FTIR)、热重分析(TGA)、扫描电子显微镜(SEM)和X射线衍射(XRD)进行了表征。对生物吸附过程在时间、温度、金属离子浓度、搅拌速度、pH值和吸附剂用量等方面进行了优化。所获得的数据通过动力学、等温线和热力学模型进行了解释。生物吸附剂和离子液体均可再生并循环使用多达三次,因此成本效益很可观。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/56fd/8412927/ae02efc6c759/ao1c02957_0002.jpg

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