磁性纳米颗粒负载过渡金属催化羰基化反应的研究进展。

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Irfan Ahmad, Munthar Kedhim, Yashwantsinh Jadeja, Gargi Sangwan, Kavitha V, Aditya Kashyap, Shirin Shomurotova, Mosstafa Kazemi, Ramin Javahershenas
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引用次数: 0

摘要

磁性催化剂已成为羰基化反应的重要创新,为合成含羰基的化合物提供了一种可持续和高效的方法。本文综述了磁性催化剂在各种羰基化过程中的作用,强调了磁性催化剂在提高反应速率、选择性和可回收性方面的重要作用。这些催化剂具有独特的磁性,可以直接分离和回收,大大减少了浪费,减少了对环境的影响。因此,磁性催化剂的环境和经济优势使其成为当代合成化学的关键参与者,推动了绿色化学实践的发展。特别值得注意的是磁性纳米颗粒与过渡金属的结合,从而开发出强大的催化系统,利用磁性和催化的互补效应。最近的研究进展表明,过渡金属催化剂支持的磁性纳米颗粒在各种羰基化反应中的适应性,包括羰基化偶联、烷氧羰基化、硫羰基化和氨基羰基化。本文仔细研究了2014年至2024年底期间磁场对催化性能的影响机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A comprehensive review on carbonylation reactions: catalysis by magnetic nanoparticle-supported transition metals.

Magnetic catalysts have become a crucial innovation in carbonylation reactions, providing a sustainable and highly efficient means of synthesizing compounds that contain carbonyl groups. This review article explores the diverse and significant role of magnetic catalysts in various carbonylation processes, emphasizing their essential contributions to improving reaction rates, selectivity, and recyclability of catalysts. The distinctive magnetic properties of these catalysts enable straightforward separation and recovery, a feature that significantly mitigates waste and reduces environmental impact. As a result, magnetic catalysts' environmental and economic advantages position them as key players in contemporary synthetic chemistry, driving the evolution of green chemistry practices. Particularly noteworthy is the combination of magnetic nanoparticles with transition metals, resulting in the development of robust catalytic systems that exploit the complementary effects of magnetism and catalysis. Recent advances have showcased the adaptability of magnetic nanoparticles supported by transition metal catalysts in various carbonylation reactions, including carbonylative coupling, alkoxy carbonylation, thio carbonylation, and amino carbonylation. This review meticulously examines the mechanistic aspects of how magnetic fields influenced catalytic performance between 2014 and the end of 2024.

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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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