Insights into the production and versatile agricultural applications of nanochitin for sustainable circularity: a review

IF 6.5 Q1 CHEMISTRY, APPLIED
Rajni Kumari , Aakash Chawade , V. Vivekanand , Nidhi Pareek
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Abstract

Chitin exhibits remarkable biocompatibility and biodegradability; nonetheless, its potential remains largely unexplored due to its hydrophobic nature, which makes it insoluble in water. Industrial marine food wastes, including crustacean shells, are the most plentiful and the potential source of chitin. High-performance chitin nanoparticles have been developed by understanding their biological characteristics and advanced preparation methods. The creation of nano-chitin materials is a significant topic due to its distinct dimensional, optical, mechanical, and other properties i.e. high surface area, low density and high dispersibility. Chitin nanocrystals and nanofibers could be fabricated by depolymerizing and demineralizing crustacean shell waste following various top-down and bottom-up methods, viz. acid hydrolysis, deep eutectic hydrolysis, TEMPO-mediated oxidation, self-assembly, etc. Morphology of the nanochitin and applications pertaining to respective nanofibrillation have been tabulated using the aforementioned methods. The present review summarizes the significant current developments in the synthesis of chitin nanoforms, i.e., nanochitin, nanofiber, or nanocrystal, along with their impact on enhancing plant growth and quality. Nanochitin could be utilized as fertilizers, biostimulant, plant elicitor, biocide as well as for seed treatment and appeared as an organic substitute for sustainable agricultural practices.

Abstract Image

纳米甲壳素的可持续循环生产和多功能农业应用的见解:综述
甲壳素具有良好的生物相容性和生物降解性;尽管如此,由于其疏水性使其不溶于水,其潜力在很大程度上仍未被开发。工业海洋食物垃圾,包括甲壳类动物的壳,是最丰富和潜在的几丁质来源。通过了解甲壳素纳米颗粒的生物学特性和先进的制备方法,开发出了高性能的甲壳素纳米颗粒。纳米甲壳素材料由于其独特的尺寸、光学、机械和其他特性(即高表面积、低密度和高分散性)而成为一个重要的课题。通过酸水解、深共晶水解、tempo介导氧化、自组装等自顶向下和自底向上的方法对甲壳类废弃物进行解聚和脱矿,制备甲壳素纳米晶体和纳米纤维。纳米甲壳素的形态和应用有关各自的纳米纤维已使用上述方法制表。本文综述了近年来几丁质纳米形态合成的重要进展,包括纳米几丁质、纳米纤维和纳米晶体,以及它们对植物生长和品质的促进作用。纳米几丁质可以用作肥料、生物刺激素、植物激发剂、杀菌剂以及种子处理,并成为可持续农业实践的有机替代品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
8.70
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0.00%
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