CuO纳米粒子在离子液体中作为吲哚亲电取代形成双(吲哚基)甲烷的有效介质的异常增值

Q3 Materials Science
G. Gupta, G. Chaudhari, S. Bhirud, C. Sarode
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引用次数: 1

摘要

离子液体是一种很有前途的绿色溶剂,具有简单但独特的结构相关物理性质,如可忽略的蒸气压、优异的热导率、显著的热稳定性及其在广泛催化应用中的适用性和惰性。CuO NPs已被认为是一种具有成本效益的试剂,它只需要温和的反应条件就可以在短时间内以优异的选择性提供所需产物的高产率。因此,在本工作中,人们试图探索CuO NPs在离子液体介质中合成生物重要的双(吲哚)甲烷的催化潜力。金属氧化物纳米颗粒在离子液体中的催化探索提供了一种协同效应,对动力学和反应结果产生了重大影响。因此,从合成有机化学可持续发展的角度来看,这种催化体系在当今时代引起了科学界的兴趣。金属氧化物纳米颗粒与高度可调的离子液体的组合不仅用于合成简单的有机分子,而且在合成具有高度商业和生物相关性的复杂有机分子方面进行了探索。目前的工作提供了一种在CuO纳米颗粒离子液体系统存在下,通过吲哚和各种醛之间的亲电取代反应合成双(吲哚基)甲烷的快速而稳健的方案。讨论的重点是导致合成双(吲哚基)甲烷的催化体系对不同官能团的高耐受性。使用离子液体通过共沉淀法合成了CuO NPs。进一步研究了金属氧化物纳米颗粒IL基质在合成双(吲哚基)甲烷中的适用性。低于600cm-1的FT-IR吸收和衍射图中显示所有峰的XRD图谱揭示了CuO纳米颗粒的形成。FESEM图像显示了CuO NPs的片状形态,并发现其与团聚的团簇分离。离子液体CuO-NPs基质显示出良好到卓越的催化性能,它们作为室温催化体系的进展为合成有机化学家开辟了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An exceptional valorization of CuO Nanoparticles in ionic liquids as an efficient medium for the electrophilic substitution of indole towards the formation of bis(indolyl)methanes
Ionic liquids are promising green solvents with simple but unique structure-related physical properties such as negligible vapour pressure, exceptional thermal conductivity, remarkable thermal stability and their suitability and inertness towards a broad range of catalytic applications. CuO NPs have been addressed as a cost-effective and a reagent of a choice that necessitates only mild reaction conditions to offer a high yield of the desired products with exceptional selectivity in a short duration of time. Therefore, in the present work, attempts have been made to explore the catalytic potentials of CuO NPs in an ionic liquid medium to synthesize biologically important bis(indolyl)methanes. Catalytic explorations of metal oxide nanoparticles in ionic liquids offers a cooperative effect that has a significant impact on the kinetics as well as on the outcome of the reaction. Therefore, such catalytic systems in the present times have seized the scientific community's interest from the perspectives of sustainable development in synthetic organic chemistry. The combination of metal oxide nanoparticles with highly tunable ionic liquids is not only used to synthesize simple organic molecules but also explored in the synthesis of complex organic molecules of high commercial and biological relevance. The current work offers a rapid and robust protocol for synthesizing bis(indolyl)methanes via electrophilic substitution reaction between indole and various aldehydes in the presence of a CuO nanoparticles-ionic liquid system. The discussion focuses on the high tolerance of different functionalities by the catalytic system leading to the synthesis of bis(indolyl)methanes. CuO NPs have been synthesized via the co-precipitation method using ionic liquid. The applicability of metal oxide nanoparticles-IL matrix was further investigated in synthesizing bis(indolyl)methanes. The FT-IR absorption below 600 cm-1 and the XRD pattern showing all the peaks in the diffraction diagram revealed the formation of CuO NPs. FESEM images show the flake-shaped morphology of CuO NPs and are found to be separated from the agglomerated clusters. Ionic liquid-CuO NPs matrix reveals good to exceptional catalytic properties, and their advancements as a catalytic system at room temperature open new avenues for synthetic organic chemists.
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来源期刊
Current Nanomaterials
Current Nanomaterials Materials Science-Materials Science (miscellaneous)
CiteScore
1.60
自引率
0.00%
发文量
53
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