以ACT@IRMOF核壳为催化剂,利用胸腺植物活性炭(ACT)经济合成苯二氮卓类药物。

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY Nanoscale Advances Pub Date : 2024-12-18 DOI:10.1039/d4na00907j
Maryam Fereydooni, Ramin Ghorbani-Vaghei, Sedigheh Alavinia
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引用次数: 0

摘要

本文采用一种简单的设计,利用溶剂热法合成了一种基于碳活化改性金属-有机骨架的纳米催化剂。本研究提出了一种简单实用的方法,利用胺功能化等孔金属有机骨架-3 (IRMOF-3)修饰胸腺植物(ACT),制备ACT@IRMOF-3核壳结构的活性炭。通过N2吸附等温线、FT-IR、FE-SEM、TEM、EDS、元素图、TGA和XRD分析证实了功能化的成功。ACT@IRMOF-3纳米复合材料在合成新型苯二氮卓类衍生物方面表现出优异的性能,在温和的条件下,使用各种1,2-苯二胺和芳香醛,可以促进高产品收率。结果表明,IRMOF-3在ACT表面的存在显著提高了催化反应收率。本方法具有催化活性高、收率高、反应时间短、反应干净、操作简单、与多种底物兼容等优点。此外,催化剂可以很容易地通过过滤从反应混合物中分离出来,即使在连续六个反应循环后,也能保持显著的可重复使用性和催化活性。
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An economical synthesis of benzodiazepines using ACT@IRMOF core-shell as a potential eco-friendly catalyst through the activated carbon of thymus plant (ACT).

Here, a straightforward design is employed to synthesize a nanocatalyst based on a carbon-activated modified metal-organic framework using the solvothermal method. This work presents a simple and practical approach for producing the activated carbon derived from the Thymus plant (ACT) modified with amine-functionalized isoreticular metal-organic framework-3 (IRMOF-3) to create an ACT@IRMOF-3 core-shell structure. Successful functionalization was confirmed through N2 adsorption isotherms, FT-IR, FE-SEM, TEM, EDS, elemental mapping, TGA, and XRD analysis. The ACT@IRMOF-3 nanocomposite demonstrated exceptional performance in the synthesis of novel benzodiazepine derivatives, facilitating high product yields using various 1,2-phenylenediamine and aromatic aldehydes under mild conditions. The obtained results demonstrated that the presence of IRMOF-3 on the surface of ACT remarkably increases the catalytic reaction yield. The present methodology offers several merits such as high catalytic activity, excellent yields, short reaction times, cleaner reactions, simple operations, and compatibility of a wide range of substrates. Furthermore, the catalyst can be easily isolated from the reaction mixture via filtration and retains remarkable reusability and catalytic activity even after six consecutive reaction cycles.

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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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