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Tailoring the nickel nanoparticles anchored on the surface of Fe3O4@SiO2 spheres for nanocatalysis

机译:定制锚定的镍纳米粒子在Fe3O4 @ SiO2球体上锚定为纳米分析

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摘要

Herein, we report an efficient and universal strategy for synthesizing a unique triple-shell structured Fe3O4@ SiO2@ C-Ni hybrid composite. Firstly, the Fe3O4 cores were synthesized by hydrothermal reaction, and sequentially coated with SiO2 and a thin layer of nickel-ion-doped resin-formaldehyde (RF-Ni2+) using an extended Stober method. This was followed by carbonization to produce the Fe3O4@ SiO2@ C-Ni nanocomposites with metallic nickel nanoparticles embedded in an RF-derived thin graphic carbon layer. Interestingly, the thin SiO2 spacer layer between RF-Ni2+ and Fe3O4 plays a critical role on adjusting the size and density of the nickel nanoparticles on the surface of Fe3O4@ SiO2 nanospheres. The detailed tailoring mechanism is explicitly discussed, and it is shown that the iron oxide core can react with the nickel nanoparticles without the SiO2 spacer layer, and the size and density of the nickel nanoparticles can be effectively controlled when the SiO2 layer exits. The multifunctional composites exhibit a significantly enhanced catalytic performance in the reduction of 4-nitrophenol (4-NP).
机译:在此,我们报告了一种合成独特三重壳结构Fe3O4 @ SiO2 @ C-Ni混合复合材料的有效和通用策略。首先,通过水热反应合成Fe3O4芯,并使用延长的级别方法顺序用SiO 2和薄层涂覆的镍离子掺杂树脂 - 甲醛(RF-NI2 +)。随后是碳化,用嵌入RF衍生的薄图形碳层的金属镍纳米颗粒生产Fe3O4 //2纳米复合材料。有趣的是,RF-Ni2 +和Fe3O4之间的薄SiO2间隔层在调节Fe3O4纳米球表面的镍纳米颗粒的尺寸和密度方面起着关键作用。明确讨论了详细的纵向机制,并显示氧化铁芯可以与没有SiO 2间隔层的镍纳米颗粒反应,并且当SiO 2层离开时,可以有效地控制镍纳米颗粒的尺寸和密度。多官能复合材料表现出显着增强的催化性能,减少4-硝基苯酚(4-NP)。

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