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从工业磨片合成纳米磁铁矿用于硼去除的应用:特性与吸附效果。

Synthesis of Nano-Magnetite from Industrial Mill Chips for the Application of Boron Removal: Characterization and Adsorption Efficacy.

机构信息

Department of Biological and Agricultural Engineering, Faculty of Engineering, Universiti Putra Malaysia, Serdang 43400, Selangor, Malaysia.

Department of Agricultural and Bioenvironmental Engineering, Federal Polytechnic Mubi, Mubi 650221, Nigeria.

出版信息

Int J Environ Res Public Health. 2021 Feb 3;18(4):1400. doi: 10.3390/ijerph18041400.

Abstract

The present study synthesized nano-magnetite (FeO) from milled steel chips using the high energy ball milling (HEBM) method, characterized it, and then utilized it as a sorbent to remediate boron concentration at various pH (4-9), dosages (0.1-0.5 g), contact times (20-240 min), and initial concentrations (10-100 mg/L). The nano-sorbents were characterized based on SEM structure, elemental composition (EDX), surface area analysis (BET), crystallinity (XRD), and functional group analysis (FTIR). The highest adsorption capacity of 8.44 mg/g with removal efficiency of 84% was attained at pH 8, 0.5 g dosage, contact time of 180 min, and 50 mg/L initial concentration. The experimental data fit best with the pseudo-second-order kinetic model with R of 0.998, while the Freundlich adsorption isotherm describes the adsorption process with an R value of 0.9464. A regeneration efficiency of 47% was attained even after five cycles of reusability studies. This efficiency implies that the nano-magnetite has the potential for sustainable industrial application.

摘要

本研究采用高能球磨(HEBM)法从钢屑中合成纳米磁铁矿(FeO),对其进行了表征,并将其用作吸附剂,在不同 pH 值(4-9)、剂量(0.1-0.5 g)、接触时间(20-240 min)和初始浓度(10-100 mg/L)下修复硼浓度。根据 SEM 结构、元素组成(EDX)、表面积分析(BET)、结晶度(XRD)和官能团分析(FTIR)对纳米吸附剂进行了表征。在 pH 值为 8、剂量为 0.5 g、接触时间为 180 min 和初始浓度为 50 mg/L 的条件下,获得了 8.44 mg/g 的最高吸附容量和 84%的去除效率。实验数据与准二级动力学模型拟合最好,R 为 0.998,而 Freundlich 吸附等温线描述了 R 值为 0.9464 的吸附过程。即使经过五次可重复使用研究的循环,再生效率仍达到 47%。这一效率表明,纳米磁铁矿具有可持续工业应用的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/40e3/7913314/6b7d1d4582a9/ijerph-18-01400-g001.jpg

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