Department of Chemistry, College of Science, Jouf University, Sakaka, Saudi Arabia.
Housing and Building Research Center (HBRC), Sanitary and Environmental Institute, Dokki, Giza, Egypt.
PLoS One. 2023 Oct 18;18(10):e0289709. doi: 10.1371/journal.pone.0289709. eCollection 2023.
The iron nanoparticles (Fe-NPs) have been synthesized using an environmentally friendly and simple green synthesis method. This study aims to obtain an aqueous extract from natural material wastes for synthesizing Fe-NPs. The produced Fe-NPs were evaluated as adsorbents for removing Pb, Se, Cu, Zn, and Cr from aqueous solutions. The formation of Fe-NPs was observed on exposure of the aqueous extract to the ferrous chloride and ferric chloride solutions. The characterization of the synthesized Fe-NPs was carried out using different instrumental techniques. As a function of the initial metal ion concentration, contact time, and various doses, the removal of the heavy metal ions was investigated. The UV-Vis spectrum of Fe-NPs showed a peak at 386 nm, 386 nm, 400 nm, 420 nm, 210 nm, 215 nm, and 272 nm of banana, pomegranate, opuntia, orange, potato, and onion, respectively. The FT-IR spectra confirmed the attachment of bioactive molecules from plants on the Fe-NPs surface. The effective reduction of metal ions was greatly aided by the -OH functional groups. The functional groups were examined and responsible for adsorption process by nanoparticle powder sample, these peaks are 3400 cm-1, 2900 cm-1, 1600 cm-1,1000 cm-1, and 1550 cm-1. The magnetization measurements revealed superparamagnetic behavior in the produced iron oxide nanoparticles. Heavy metal ions uptake followed a time, dose, and initial concentration-dependent profile, with maximum removal efficiency at 45 min, 0.4 g, and 3.0 mg/L of metal concentration, respectively.
采用一种环保且简单的绿色合成方法合成了铁纳米粒子(Fe-NPs)。本研究旨在从天然材料废物中获得一种水提取物,用于合成 Fe-NPs。所制备的 Fe-NPs 被评估为从水溶液中去除 Pb、Se、Cu、Zn 和 Cr 的吸附剂。在将水提取物暴露于氯化亚铁和氯化铁溶液后观察到 Fe-NPs 的形成。采用不同的仪器技术对合成的 Fe-NPs 进行了表征。作为初始金属离子浓度、接触时间和各种剂量的函数,研究了重金属离子的去除情况。Fe-NPs 的紫外-可见光谱在 386nm、386nm、400nm、420nm、210nm、215nm 和 272nm 处分别显示出香蕉、石榴、仙人掌、橙子、土豆和洋葱的峰。FT-IR 光谱证实了来自植物的生物活性分子附着在 Fe-NPs 表面。-OH 官能团极大地促进了金属离子的有效还原。通过纳米粒子粉末样品检查了功能基团并负责吸附过程,这些峰在 3400cm-1、2900cm-1、1600cm-1、1000cm-1 和 1550cm-1 处。磁化测量表明所制备的氧化铁纳米粒子具有超顺磁性。重金属离子的摄取遵循时间、剂量和初始浓度依赖性的模式,在 45 分钟、0.4g 和 3.0mg/L 的金属浓度下,去除效率最高。