Silver nanoparticles in dye effluent treatment: A review on synthesis, treatment methods, mechanisms, photocatalytic degradation, toxic effects and mitigation of toxicity

流出物 银纳米粒子 水处理 光催化 环境化学 纳米颗粒 降级(电信) 环境科学 污染 水污染 化学 污水处理 纳米技术 材料科学 环境工程 催化作用 有机化学 计算机科学 生态学 电信 生物
作者
Sivasankari Marimuthu,Arul Jayanthi Antonisamy,Sankar Malayandi,Karthikeyan Rajendran,Pei‐Chien Tsai,Arivalagan Pugazhendhi,Vinoth Kumar Ponnusamy
出处
期刊:Journal of Photochemistry and Photobiology B-biology [Elsevier]
卷期号:205: 111823-111823 被引量:346
标识
DOI:10.1016/j.jphotobiol.2020.111823
摘要

The current scenario of water resources shows the dominance of pollution caused by the draining of industrial effluents. The polluted waters have resulted in severe health and environmental hazards urging for a suitable alternative to resolve the implications. Various physical and chemical treatment steps currently in use for dye effluent treatment are more time consuming, cost-intensive, and less effective. Alternatively, nanoparticles due to their excellent surface properties and chemical reactivity have emerged as a better solution for dye removal and degradation. In this regard, the potential of silver nanoparticles in dye effluent treatment was greatly explored. Efforts were taken to unravel the kinetics and statistical optimization of the treatment conditions for the efficient removal of dyes. In addition, the role of silver nanocomposites has also experimented with colossal success. On the contrary, studies have also recognized the mechanisms of silver nanoparticle-mediated toxicity even at deficient concentrations and their deleterious biological effects when present in treated water. Hence, the fate of the silver nanoparticles released into the treated water and sludge, contaminating the soil, aquatic environment, and underground water is of significant concern. This review summarizes the current state of knowledge regarding the use of silver nanoparticles and silver-based nanocomposites in effluent treatment and comprehends the recent research on mitigation of silver nanoparticle-induced toxicity.
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