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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Harnessing the Untapped Catalytic Potential of a CoFe2O4/Mn-BDC Hybrid MOF Composite for Obtaining a Multitude of 1,4-Disubstituted 1,2,3-Triazole Scaffolds
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Harnessing the Untapped Catalytic Potential of a CoFe2O4/Mn-BDC Hybrid MOF Composite for Obtaining a Multitude of 1,4-Disubstituted 1,2,3-Triazole Scaffolds

机译:利用CoFe2O4 / MN-BDC杂交MOF复合材料的未开发的催化潜力,得到众多的1,4-二取代的1,2,3-三唑支架

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摘要

Metal-organic frameworks derived nanostructures with extraordinary variability, and many unprecedented properties have recently emerged as promising catalytic materials to address the challenges in the field of modern organic synthesis. In this contribution, the present work reports the fabrication of an intricately designed magnetic MOF composite based on Mn-BDC (manganese benzene-1,4-dicarboxylate/manganese terephthalate) microflakes via a facile and benign in situ solvothermal approach. Structural information about the as-synthesized hybrid composite has been obtained with characterization techniques such as TEM, SEM, XRD, FT-IR, AAS, EDX, ED-XRF, and VSM analysis. Upon investigation of catalytic performance, the resulting material unveils remarkable efficacy toward facile access of a diverse array of pharmaceutically active 1,2,3-triazoles from a multicomponent coupling reaction of terminal alkynes, sodium azide, and alkyl or aryl halides as coupling partners. In addition to a wide substrate scope, the catalyst with highly accessible active sites also possesses a stable catalytic metal center along with superb magnetic properties that facilitate rapid and efficient separation. The prominent feature that makes this protocol highly desirable is the ambient and greener reaction conditions in comparison to literature precedents reported to date. Further, a plausible mechanistic pathway is also proposed to rationalize the impressive potential of the developed catalytic system in the concerned reaction. We envision that findings from our study would not only provide new insights into the judicious design of advanced MOF based architectures but also pave the way toward greening of industrial manufacturing processes to tackle critical environmental and economic issues.
机译:金属有机框架产生的纳米结构具有非凡的变化,和许多前所未有的性能,最近成为有前途的催化材料,以解决现代有机合成领域的挑战。在这方面的贡献,本工作报告以Mn-BDC的错综复杂的设计磁性MOF复合体的制造通过一个浅显的(锰苯-1,4-二羧酸酯/锰对苯二甲酸酯)微米薄片和原位溶剂热方法良性。已获得与表征技术如TEM,SEM,XRD,FT-IR,AAS,EDX,ED-XRF,和VSM分析关于所合成的杂化复合物的结构信息。当的催化性能的调查,从朝向末端炔烃,叠氮化钠,和烷基或芳基卤化物作为偶联的多组分偶联反应的药物活性的1,2,3-三唑的多样性阵列的容易访问所得到的材料推出显着的功效。除了广泛的底物范围的,具有高度可访问的活性位点催化剂还具有与促进快速和有效的分离极好的磁特性沿一个稳定的催化金属中心。突出的特点,使得该协议高度期望的是相比于迄今为止报道文献先例环境和更环保的反应条件。此外,合理的机械途径还提出要理顺开发催化体系的巨大潜力在有关反应。我们设想,从我们的研究结果不仅提供新的见解先进的MOF基础架构明智的设计,但也向铺平工业生产过程中的绿化,以解决关键的环境和经济问题的方式。

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