含钯磁性UiO-66-NH2作为一种高效、可回收的纳米催化剂还原硝基苯。

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Shiva Kargar, Dawood Elhamifar
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引用次数: 0

摘要

具有可调表面化学性质的磁可回收多孔材料由于其易于分离、结构通用性和高表面可及性而越来越受到多相催化的关注。然而,将多个功能组件集成到一个稳定且可重复使用的催化平台中仍然是一个重大挑战。在这项研究中,通过逐步功能化的方法,设计和合成了层次化纳米复合材料Fe3O4@MCM-41@UiO-66/SB-Pd。该策略集成了磁性Fe3O4核心,介孔二氧化硅,微孔UiO-66-NH2框架和Schiff碱配位Pd配合物,以产生结构有序且具有催化活性的纳米复合材料。所得的纳米材料具有高表面积(249.1 m2 g-1)、分层孔隙度、热稳定性和超顺磁性。综合表征证实了所有官能团的成功结合,同时保持了结晶度。Fe3O4@MCM-41@ uuo -66/SB-Pd纳米复合材料在温和条件下对硝基芳烃具有较高的催化还原效率,并且具有良好的可重复使用性。这些结果强调了一种很有前途的方法,即设计具有分层孔隙度、增强稳定性和可回收性的混合催化材料,用于与环境相关的转化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Palladium-containing magnetic UiO-66-NH2 as a highly powerful and recoverable nanocatalyst for the reduction of nitrobenzenes.

Magnetically recoverable porous materials with tunable surface chemistry are of growing interest for heterogeneous catalysis due to their ease of separation, structural versatility, and high surface accessibility. However, integrating multiple functional components into a single stable and reusable catalytic platform remains a significant challenge. In this study, the design and synthesis of a hierarchical nanocomposite, Fe3O4@MCM-41@UiO-66/SB-Pd, through a stepwise functionalization approach are reported. The strategy integrates a magnetic Fe3O4 core, mesoporous silica, a microporous UiO-66-NH2 framework, and a Schiff base-coordinated Pd complex to yield a structurally ordered and catalytically active nanocomposite. The resulting nanomaterial exhibited a high surface area (249.1 m2 g-1), hierarchical porosity, thermal stability, and superparamagnetic behavior. Comprehensive characterization confirmed the successful incorporation of all functional groups while maintaining crystallinity. The Fe3O4@MCM-41@UiO-66/SB-Pd nanocomposite demonstrated high catalytic efficiency for the reduction of nitroarenes under mild conditions, along with excellent reusability. These results highlight a promising approach for designing hybrid catalytic materials with hierarchical porosity, enhanced stability, and practical recyclability for environmentally relevant transformations.

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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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