Samuel Melvin S, Selvarajan E, Sarswat Ankur, Muthukumar Harshiny, Jacob Jaya Mary, Mukesh Malavika, Pugazhendhi Arivalagan
Department of Materials Science and Engineering, CEAS, University of Wisconsin-Milwaukee, Milwaukee, WI 53211, United States.
Department of Genetic Engineering, School of Bioengineering, SRM Institute of Science and Technology, Kattankulathur, Tamil Nadu, India.
J Hazard Mater. 2022 Feb 15;424(Pt C):127572. doi: 10.1016/j.jhazmat.2021.127572. Epub 2021 Oct 23.
Freshwater demand will rise in the next couple of decades, with an increase in worldwide population growth and industrial development. The development activities, on one side, have increased the freshwater demand. However, the ground water has been degraded. Among the various organic and inorganic contaminants, arsenic is one of the most toxic elements. Arsenic contamination in ground waters is a major issue worldwide, especially in South and Southeast Asia. Various methods have been applied to provide a remedy to arsenic contamination, including adsorption, ion exchange, oxidation, coagulation-precipitation and filtration, and membrane filtration. Out of these methods, adsorption of As(III)/As(V) using nanomaterials and biopolymers has been used on a wide scale. The present review focuses on recently used nanomaterials and biopolymer composites for As(III)/As(V) sorptive removal. As(III)/As(V) adsorption mechanisms have been explored for various sorbents. The impacts of environmental factors such as pH and co-existing ions on As(III)/As(V) removal, have been discussed. Comparison of various nanosorbents and biopolymer composites for As(III)/As(V) adsorption and regeneration of exhausted materials has been included. Overall, this review will be useful to understand the sorption mechanisms involved in As(III)/As(V) removal by nanomaterials and biopolymer composites and their comparative sorption performances.
在未来几十年里,随着全球人口增长和工业发展,淡水需求将会增加。一方面,发展活动增加了淡水需求。然而,地下水质量已经恶化。在各种有机和无机污染物中,砷是毒性最强的元素之一。地下水砷污染是一个全球性的重大问题,尤其是在南亚和东南亚地区。人们已经采用了各种方法来治理砷污染,包括吸附、离子交换、氧化、混凝沉淀和过滤以及膜过滤。在这些方法中,使用纳米材料和生物聚合物吸附As(III)/As(V)的方法得到了广泛应用。本综述重点关注最近用于吸附去除As(III)/As(V)的纳米材料和生物聚合物复合材料。已经探索了各种吸附剂对As(III)/As(V)的吸附机制。讨论了pH值和共存离子等环境因素对As(III)/As(V)去除的影响。还包括了各种纳米吸附剂和生物聚合物复合材料对As(III)/As(V)的吸附以及废材料再生的比较。总的来说,这篇综述将有助于理解纳米材料和生物聚合物复合材料去除As(III)/As(V)所涉及的吸附机制及其比较吸附性能。