Green Analytical Chemistry Laboratory, School of Chemical Sciences, Universiti Sains Malaysia, Minden, Pulau Pinang 11800, Malaysia; Department of Chemical, Geological and Physical Sciences, Kwara State University, Malete, P.M.B 1530, Ilorin, Nigeria.
Green Analytical Chemistry Laboratory, School of Chemical Sciences, Universiti Sains Malaysia, Minden, Pulau Pinang 11800, Malaysia.
J Hazard Mater. 2021 Apr 15;408:124889. doi: 10.1016/j.jhazmat.2020.124889. Epub 2020 Dec 19.
In recent times, research interest into the development of biodegradable, cost-effective and environmental friendly adsorbents with favourable properties for adsorption of pollutants is a challenge. Modification of chitosan via different physical and chemical methods have gained attention as a promising approach for removing organic (such as dyes and pharmaceuticals) and inorganic (such as metal/metal ions) pollutants from aqueous medium. In this regard, researchers have reported grafting and cross-linking approach among others as a potentially useful method for chitosan's modification for improved adsorption efficiency with respect to pollutant uptake. This article reviews the trend in chitosan modification, with regards to the summary of some recently published works on modification of chitosan and their adsorption application in pollutants (metal ion, dyes and pharmaceuticals) removal from aqueous medium. The review uniquely highlights some common cross-linkers and grafting procedures for chitosan modification, their influence on structure and adsorption capacity of modified-chitosan with respect to pollutants removal. Findings revealed that the performance of modified chitosan for adsorption of pollutants depends largely on the modification method adopted, materials used for the modification and adsorption experimental conditions. Cross-linking is commonly utilized for improving the chemical and mechanical stabilities of chitosan but usually decreases adsorption capacity of chitosan/modified-chitosan for adsorption of pollutants. However, literature survey revealed that adsorption capacity of cross-linked chitosan based materials have been enhanced in recently published works either by grafting, incorporation of solid adsorbents (e.g metals, clays and activated carbon) or combination of both prior to cross-linking.
近年来,研究兴趣集中在开发具有生物降解性、成本效益高和环境友好的吸附剂上,这些吸附剂具有吸附污染物的优良性能。通过不同的物理和化学方法对壳聚糖进行改性,已成为一种很有前途的方法,可以去除水介质中的有机(如染料和药物)和无机(如金属/金属离子)污染物。在这方面,研究人员已经报道了接枝和交联等方法,作为壳聚糖改性的一种潜在有用方法,以提高对污染物的吸附效率。本文综述了壳聚糖改性的趋势,总结了一些最近关于壳聚糖改性及其在污染物(金属离子、染料和药物)去除中的吸附应用的研究工作。本文的独特之处在于强调了一些常见的壳聚糖改性的交联剂和接枝程序,以及它们对改性壳聚糖的结构和吸附能力的影响,以去除污染物。研究结果表明,改性壳聚糖对污染物的吸附性能在很大程度上取决于所采用的改性方法、用于改性的材料以及吸附实验条件。交联通常用于提高壳聚糖的化学和机械稳定性,但通常会降低壳聚糖/改性壳聚糖对污染物的吸附能力。然而,文献调查显示,最近发表的工作中,交联壳聚糖基材料的吸附能力已经通过接枝、固载剂(如金属、粘土和活性炭)的加入或两者结合在交联前得到了提高。