Green and Sustainable Chemistry Approaches on Azide-Based Click Reactions in Polymer Science.

IF 4.3 3区 化学 Q2 POLYMER SCIENCE
Hatice Mutlu, Bercis Pektas, C Remzi Becer, Azra Kocaarslan
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引用次数: 0

Abstract

Click Chemistry, particularly the azide-alkyne cycloaddition (AAC) reaction, has revolutionized polymer chemistry, enabling precise and efficient synthesis of advanced functional materials. With its high regioselectivity, mild reaction conditions, and versatility, AAC reactions align closely with the principles of Green and Sustainable Chemistry. However, the core principles of Click Chemistry, particularly its compatibility with Green Chemistry ideals-such as reduced waste, high atom economy, and mild reaction conditions-remain insufficiently emphasized in the context of polymer chemistry. The review evaluates current limitations in AAC-particularly the challenges associated with hazardous azide reagents and reliance on non-renewable resources-and explores innovative solutions, including greener catalysts, solvent-free systems, and the incorporation of renewable feedstocks. Additionally, the review presents a comparison of activation methods, spanning thermal, catalytic, metal-free, and strain-promoted pathways, to highlight their respective advantages and trade-offs in sustainability. Practical applications of AAC in polymer design are discussed, showcasing its role in creating materials with tailored properties such as thermal stability, bioactivity, and electronic functionality. This analysis provides a roadmap for future research to optimize AAC for sustainability without compromising its effectiveness in materials design.

聚合物科学中叠氮基咔嗒反应的绿色和可持续化学方法。
点击化学,特别是叠氮化物-炔环加成(AAC)反应,已经彻底改变了聚合物化学,使先进功能材料的精确和高效合成成为可能。AAC反应具有高的区域选择性、温和的反应条件和通用性,与绿色和可持续化学的原则密切相关。然而,Click化学的核心原则,特别是它与绿色化学理想的兼容性,如减少浪费,高原子经济性和温和的反应条件,在聚合物化学的背景下仍然没有得到充分的强调。该综述评估了aac目前的局限性,特别是与危险叠氮化物试剂和对不可再生资源的依赖相关的挑战,并探索了创新的解决方案,包括更环保的催化剂、无溶剂系统和可再生原料的结合。此外,该综述还比较了热、催化、无金属和应变促进的激活方法,以突出其各自的优势和可持续性的权衡。讨论了AAC在聚合物设计中的实际应用,展示了它在创造具有特定性能的材料方面的作用,如热稳定性、生物活性和电子功能。这一分析为未来的研究提供了路线图,以优化AAC的可持续性,而不影响其在材料设计中的有效性。
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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来源期刊
Macromolecular Rapid Communications
Macromolecular Rapid Communications 工程技术-高分子科学
CiteScore
7.70
自引率
6.50%
发文量
477
审稿时长
1.4 months
期刊介绍: Macromolecular Rapid Communications publishes original research in polymer science, ranging from chemistry and physics of polymers to polymers in materials science and life sciences.
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