Effective remediation of low-concentration cadmium in groundwater using nano-scale magnesia.

IF 5.8 3区 环境科学与生态学 0 ENVIRONMENTAL SCIENCES Environmental Science and Pollution Research Pub Date : 2017-04-01 Epub Date: 2017-03-13 DOI:10.1007/s11356-017-8697-y
Neel Kamal Koju, Xin Song, Qing Wang
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引用次数: 3

Abstract

Cadmium (Cd), one of the hazardous elements in groundwater, is a severe threat to human health and ecological systems even at low concentrations. This study explores the effectiveness of commercial and self-synthesized nano-scale magnesia (NMgO) for remediating low-concentration Cd in groundwater as well as their associated removal mechanisms. The sorption kinetic data for both NMgOs were well fitted to the pseudo-second-order model and the calculated q e values matched the experimental q e values for both commercial and self-synthesized NMgOs. The sorption equilibrium data for both NMgOs were well fitted to the Langmuir isotherm model, with the maximum Cd sorption capacity (q e) of 19.25 and 16.54 mg/g at an initial concentration range of 5-200 μg/L and a temperature of 25 °C, for commercial and self-synthesized NMgOs, respectively. The combined sorption kinetics and equilibrium data suggest that the sorption onto both NMgOs follows a monolayer chemisorption. The scanning electron microscope-energy dispersive X-ray (SEM-EDX), Fourier transform infrared spectroscopy (FTIR), and X-ray diffractometer (XRD) analyses show that the chemisorption of Cd onto commercial NMgO is due to the formation of Cd(OH)2, which precipitates on the sorbent surface. For the self-synthesized NMgO, it was demonstrated that the hydroxyl group plays a role in the chemisorption process and the amount of Cd sorbed on the sorbent was quantified. The results of batch experiments showed that both NMgOs removed Cd effectively, obtaining a removal efficiency of more than 99%, under different experimental conditions of pH, sorbent dosage, co-existing ions, and simulated groundwater. Results from both the sorption isotherm and desorption experiments indicated strong bonding between Cd and both NMgOs, suggesting that NMgOs are safe, effective, and practical sorbents to remediate Cd in groundwater.

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纳米氧化镁对地下水中低浓度镉的有效修复
镉(Cd)是地下水中的有害元素之一,即使浓度很低,也会对人类健康和生态系统造成严重威胁。本研究探讨了商业和自合成纳米氧化镁(NMgO)对地下水中低浓度镉的修复效果及其相关的去除机制。两种nmgo的吸附动力学数据均符合拟二阶模型,计算的qe值与实验的qe值吻合。两种nmgo的吸附平衡数据均符合Langmuir等温线模型,在5 ~ 200 μg/L的初始浓度范围和25℃的温度下,商业nmgo和自合成nmgo的最大Cd吸附量(q e)分别为19.25和16.54 mg/g。综合吸附动力学和平衡数据表明,两种nmgo的吸附遵循单层化学吸附。扫描电镜-能谱x射线(SEM-EDX)、傅里叶变换红外光谱(FTIR)和x射线衍射(XRD)分析表明,Cd在商业NMgO上的化学吸附是由于Cd(OH)2的形成,Cd(OH)2沉淀在吸附剂表面。对于自合成的NMgO,证明了羟基在化学吸附过程中起作用,并定量了吸附剂吸附Cd的量。批量实验结果表明,在pH、吸附剂投加量、共存离子、模拟地下水等不同实验条件下,两种nmgo均能有效去除Cd,去除率均在99%以上。吸附等温线和解吸实验结果表明,两种nmgo与Cd之间存在较强的结合关系,表明nmgo是一种安全、有效、实用的地下水Cd修复吸附剂。
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来源期刊
CiteScore
8.70
自引率
17.20%
发文量
6549
审稿时长
3.8 months
期刊介绍: Environmental Science and Pollution Research (ESPR) serves the international community in all areas of Environmental Science and related subjects with emphasis on chemical compounds. This includes: - Terrestrial Biology and Ecology - Aquatic Biology and Ecology - Atmospheric Chemistry - Environmental Microbiology/Biobased Energy Sources - Phytoremediation and Ecosystem Restoration - Environmental Analyses and Monitoring - Assessment of Risks and Interactions of Pollutants in the Environment - Conservation Biology and Sustainable Agriculture - Impact of Chemicals/Pollutants on Human and Animal Health It reports from a broad interdisciplinary outlook.
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