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Bioinspired Design of an Immobilization Interface for Highly Stable, Recyclable Nanosized Catalysts

机译:生物启发的高度稳定,可回收纳米催化剂固定接口的设计

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Immobilization of nanometer-sized metal catalysts into porous substrates can stabilize the catalysts and allow their recycled uses, while immobilization often sacrifices the active surface of catalysts and degenerates the local microenvironments, resulting in the reduction of the catalytic activity. To maintain a high activity of immobilized nanocatalysts, it is critically important to design an interface that minimizes the contact area and favors reaction chemistry. Here we report on the application of mussel-inspired adhesion chemistry to the formation of catalytic metal nanocrystal-polydopamine hybrid materials that exhibit a high catalytic efficiency during recycled uses. Electrospun polymer nanofibers are used as a template for in situ formation and immobilization of gold nanoparticles via polydopamine-induced reduction of ionic precursors. The prepared hybrid nanostructures exhibit a recyclable catalytic activity for the reduction of 4-nitrophenol with a turnover frequency of 3.2-5.1 mu mol g(-1) min(-1). Repeated uses of the hybrid nanostructures do not significantly alter their morphology, indicating the excellent structural stability of the hybrid nanostructures. We expect that the polydopamine chemistry combined with the on-surface synthesis of catalytic nanocrystals is a promising route to the immobilization of various colloidal nanosized catalysts on supporting substrates for long-term catalysis without the physical instability problem.
机译:将纳米级金属催化剂固定在多孔基质中可以稳定催化剂并允许其循环使用,而固定化通常会牺牲催化剂的活性表面并使局部微环境退化,从而导致催化活性降低。为了保持固定化纳米催化剂的高活性,设计一个最小化接触面积并有利于反应化学的界面至关重要。在这里,我们报道了贻贝启发的粘附化学在催化金属纳米晶体-聚多巴胺杂化材料的形成中的应用,该材料在回收利用过程中表现出高催化效率。电纺聚合物纳米纤维被用作通过聚多巴胺诱导的离子前体还原原位形成和固定金纳米颗粒的模板。制备的杂化纳米结构表现出可回收的催化活性,用于还原4-硝基苯酚,其周转频率为3.2-5.1μmol g(-1)min(-1)。重复使用杂化纳米结构不会显着改变其形态,表明杂化纳米结构具有出色的结构稳定性。我们期望,聚多巴胺化学与催化纳米晶体的表面合成相结合,是将各种胶体纳米尺寸催化剂固定在支持基质上以进行长期催化而没有物理不稳定性问题的有希望的途径。

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