Cu-alginate hydrogels in microfluidic systems: a sustainable catalytic approach for click chemistry

Arijana Ramšak, Martin Gazvoda, Igor Plazl, R. Ambrožič
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Abstract

This work explores the innovative use of copper-alginate (Cu-alginate) hydrogels within microfluidic systems to catalyze dipolar cycloaddition reactions, emphasizing green chemistry principles and process intensification. Utilizing naturally occurring biopolymers, such as alginates, provides an environmentally friendly alternative to conventional catalyst supports due to their biocompatibility, biodegradability, and effective metal ion immobilization capabilities. The integration of these biopolymer-based catalysts into microfluidic devices allows for precise control over reaction conditions, leading to enhanced reaction kinetics and mass transfer efficiencies. Our results demonstrate that Cu-alginate hydrogels effectively catalyze the formation of 1,4-disubstituted 1,2,3-triazoles through [3 + 2] dipolar cycloaddition reactions with high regioselectivity and conversion. The microfluidic setup ensures rapid and efficient synthesis, surpassing traditional batch reaction methods in both reaction rate and environmental impact by reducing solvent usage and waste generation. Furthermore, the use of microfluidics contributes to the reproducibility and scalability of the synthesis process, important for industrial applications. The model-based design and its simulations have been employed to further understand and optimize the reaction system. Diffusion through the gel layer and catalytic reaction kinetics estimated from experimental data were included in the model, providing a theoretical foundation for a comprehensive process evaluation. This study not only advances the field of sustainable catalysis by demonstrating the practical utility of biopolymer-supported catalysts in microfluidic systems, but also sets the stage for further research into biopolymer applications in complex chemical syntheses.
微流控系统中的海藻酸铜水凝胶:一种可持续的点击化学催化方法
这项研究探索在微流控系统中创新性地使用海藻酸铜(Cu-alginate)水凝胶催化双极环化反应,强调绿色化学原理和过程强化。藻酸盐等天然生物聚合物具有生物相容性、生物可降解性和有效的金属离子固定能力,因此可作为传统催化剂载体的环保型替代品。将这些基于生物聚合物的催化剂集成到微流控装置中,可以精确控制反应条件,从而提高反应动力学和传质效率。我们的研究结果表明,海藻酸铜水凝胶能通过[3 + 2]双极环加成反应有效催化1,4-二取代的1,2,3-三唑的形成,并具有很高的区域选择性和转化率。微流控装置确保了快速高效的合成,通过减少溶剂用量和废物产生,在反应速率和对环境的影响方面均超越了传统的间歇反应方法。此外,微流控技术的使用还有助于提高合成过程的可重复性和可扩展性,这对工业应用非常重要。基于模型的设计及其模拟被用来进一步理解和优化反应系统。通过凝胶体层的扩散和根据实验数据估算的催化反应动力学被纳入模型中,为综合工艺评估提供了理论基础。这项研究不仅证明了微流控系统中生物聚合物支撑催化剂的实用性,从而推动了可持续催化领域的发展,而且为进一步研究生物聚合物在复杂化学合成中的应用奠定了基础。
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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