School of Chemistry, Madurai Kamaraj University, Madurai 625021, Tamil Nadu, India.
Department of Advanced Zoology and Biotechnology, Loyola College, Chennai 600 034, Tamil Nadu, India.
Int J Biol Macromol. 2021 Jan 15;167:807-833. doi: 10.1016/j.ijbiomac.2020.10.216. Epub 2020 Nov 1.
Chitosan is one of the readily available polymers with relatively high abundance, biodegradable and sustainable materials with divergent functional groups that are employed in broad range of applications. Chitosan is widely used in many fields like adsorption, drug carrier for therapeutic activity, environmental remediation, drug formulation and among others. One of the unique features of chitosan is that it can be transformed to other forms like beads, films, flakes, sponges and fibres depending upon the applications. This review is aimed at showing the potential applications of chitosan and its modified solids in organic transformations. The number of existing articles is organized based on the nature of materials and subsequently with the types of reactions. After a brief description on the structural features of chitosan, properties, characterization methods including various analytical/microscopic techniques and some of the best practices to be followed in catalysis are also discussed. The next section of this review describes the catalytic activity of native chitosan without any modifications while the subsequent sections provide the catalytic activity of chitosan derivatives, chitosan covalently modified with metal complexes/salts through linkers and chitosan as support for metal nanoparticles (NPs). These sections discuss number of organic reactions that include Knoevenagel condensation, oxidation, reduction, heterocycles synthesis, cross-coupling reactions and pollutant degradation among others. A separate section provides the catalytic applications of chitosan and its modified forms for the production of fatty acid methyl esters (FAME) through esterification/transesterification reactions. The final section summarizes our views on the future directions of this field in the coming years.
壳聚糖是一种易于获得的聚合物,具有相对较高的丰度、可生物降解和可持续性,具有不同的功能基团,广泛应用于各种领域。壳聚糖广泛应用于许多领域,如吸附、治疗活性的药物载体、环境修复、药物制剂等。壳聚糖的一个独特特点是,它可以根据应用的不同转化为其他形式,如珠粒、薄膜、薄片、海绵和纤维。本综述旨在展示壳聚糖及其改性固体在有机转化中的潜在应用。现有的文章数量是根据材料的性质组织的,然后根据反应的类型进行组织。在简要描述壳聚糖的结构特征、性质、表征方法(包括各种分析/显微镜技术)以及催化中应遵循的一些最佳实践之后,本综述的下一部分描述了天然壳聚糖在没有任何修饰的情况下的催化活性,而随后的部分则提供了壳聚糖衍生物、通过连接体与金属配合物/盐共价修饰的壳聚糖以及金属纳米粒子(NPs)的载体壳聚糖的催化活性。这些部分讨论了许多有机反应,包括 Knoevenagel 缩合、氧化、还原、杂环合成、交叉偶联反应和污染物降解等。单独的一节提供了壳聚糖及其改性形式在酯化/酯交换反应中通过脂肪酸甲酯(FAME)生产中的催化应用。最后一部分总结了我们对未来几年该领域未来发展方向的看法。