废水处理用生物絮凝剂合成铁纳米颗粒的绿色合成及表征研究进展。

Nkanyiso C. Nkosi , Albertus K. Basson , Zuzingcebo G. Ntombela , Nkosinathi G. Dlamini , Rajasekhar V.S.R. Pullabhotla
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引用次数: 0

摘要

纳米技术是一个迅速发展的领域,具有多种医疗保健、农业和工业应用。该学科的核心是在纳米尺度上操纵材料,特别是从1到100纳米的纳米颗粒(NPs)。这些NPs可以通过各种方法合成,包括化学、物理和生物过程。其中,生物合成利用微生物、植物等自然资源作为还原剂和封盖剂,因其生态友好的特性而备受关注。然而,关于利用生物学方法生产铁纳米颗粒(FeNPs)的信息很少,而利用微生物絮凝剂合成铁纳米颗粒的信息则更少。本文综述了利用微生物絮凝剂合成FeNPs的全面研究,重点介绍了所涉及的方法及其对环境应用的影响。最近的研究表明,微生物絮凝剂提高了合成FeNP的稳定性和效率,同时促进了环境友好的生产方法。合成的FeNPs可以有效去除废水中的污染物,对特定染料的去除率高达93%,并显著降低化学需氧量(COD)和生物需氧量(BOD)。此外,这些FeNPs对革兰氏阳性和革兰氏阴性细菌均表现出显著的抗菌性能。本文综述了2015年1月至2023年12月期间进行的研究,提供了合成FeNPs的详细特征,并强调了它们在废水处理和环境修复中的潜在应用。
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Green synthesis and characterization of iron nanoparticles synthesized from bioflocculant for wastewater treatment: A review
Nanotechnology is a rapidly expanding field with diverse healthcare, agriculture, and industry applications. Central to this discipline is manipulating materials at the nanoscale, particularly nanoparticles (NPs) ranging from 1 to 100 nm. These NPs can be synthesized through various methods, including chemical, physical, and biological processes. Among these, biological synthesis has gained significant attention due to its eco-friendly nature, utilizing natural resources such as microbes and plants as reducing and capping agents. However, information is scarce regarding the production of iron nanoparticles (FeNPs) using biological approaches, and even less is available on the synthesis of FeNPs employing microbial bioflocculants. This review aims to provide a comprehensive examination of the synthesis of FeNPs using microbial bioflocculants, highlighting the methodologies involved and their implications for environmental applications. Recent findings indicate that microbial bioflocculants enhance the stability and efficiency of FeNP synthesis while promoting environmentally friendly production methods. The synthesized FeNPs demonstrated effective removal of contaminants from wastewater, achieving removal rates of up to 93 % for specific dyes and significant reductions in chemical oxygen demand (COD) and biological oxygen demand (BOD). Additionally, these FeNPs exhibited notable antimicrobial properties against both Gram-positive and Gram-negative bacteria.
This review encompasses studies conducted between January 2015 and December 2023, providing detailed characterization of the synthesized FeNPs and underscoring their potential applications in wastewater treatment and environmental remediation.
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