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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Rational design and in situ fabrication of MnO2@NiCo2O4 nanowire arrays on Ni foam as high-performance monolith de-NOx catalysts
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Rational design and in situ fabrication of MnO2@NiCo2O4 nanowire arrays on Ni foam as high-performance monolith de-NOx catalysts

机译:作为高性能整体式脱硝催化剂的镍泡沫上的MnO2 @ NiCo2O4纳米线阵列的合理设计和原位制备

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In this work, we have rationally designed and originally developed a novel monolith de-NOx catalyst with nickel foam as the carrier and three dimensional hierarchical MnO2@NiCo2O4 core-shell nanowire arrays in situ grown on the surface via a two-step hydrothermal process with a post calcination treatment. The catalysts were systematically examined by X-ray diffraction, scanning electron microscopy, transmission electron microscopy, elemental mapping, ion sputtering thinning, X-ray photoelectron spectroscopy, inductively coupled plasma atomic emission spectroscopy, H-2 temperature-programmed reduction, NH3/NO + O-2 temperature-programmed desorption measurements and catalytic performance tests. The results indicate that the nanowire is composed of hollow NiCo2O4 spinel as the core and MnO2 nanoparticles as the shell layer. By ingeniously making the hierarchical Ni-Co oxide nanowires as the support for manganese oxides, the MnO2@NiCo2O4@Ni foam catalyst not only takes advantage of the high surface area of Ni-Co nanowires to achieve high loading amounts as well as high dispersion of manganese oxides, but also makes use of the synergistic catalytic effect between Ni, Co and Mn multiple oxides, and exhibits excellent low-temperature catalytic performance in the end. In addition, with the structure and morphology well maintained under long term steady isothermal operation, the catalyst is able to sustain high NO conversion and exhibits superior catalytic cycle stability and good H2O resistance. Considering all these favorable properties, the MnO2@NiCo2O4@Ni foam catalyst could serve as a promising candidate for the monolith de-NOx catalyst at low temperatures and the rational design of in situ synthesis of 3D hierarchical monolith catalysts also puts forward a new way for the development of environmental-friendly and highly active monolith de-NOx catalysts.
机译:在这项工作中,我们合理设计并最初开发了一种新型的整体式脱硝催化剂,该催化剂以泡沫镍为载体,并通过两步水热法在表面上原位生长了三维分层的MnO2 @ NiCo2O4核壳纳米线阵列。煅烧后的处理。通过X射线衍射,扫描电子显微镜,透射电子显微镜,元素图谱,离子溅射稀化,X射线光电子能谱,电感耦合等离子体原子发射光谱,H-2程序升温还原,NH3 / NO对系统进行了系统检查+ O-2温度程序解吸测量和催化性能测试。结果表明,纳米线由空心NiCo2O4尖晶石为核,MnO2纳米颗粒为壳层。通过巧妙地将分层的Ni-Co氧化物纳米线用作氧化锰的载体,MnO2 @ NiCo2O4 @ Ni泡沫催化剂不仅利用Ni-Co纳米线的高表面积来实现高负载量和高分散性锰氧化物,但也利用了Ni,Co和Mn多种氧化物之间的协同催化作用,最终表现出优异的低温催化性能。此外,在长期稳定的等温运行下,其结构和形态得到了很好的保持,该催化剂能够维持较高的NO转化率,并表现出优异的催化循环稳定性和良好的抗H2O性能。考虑到所有这些良好的性能,MnO2 @ NiCo2O4 @ Ni泡沫催化剂可以作为整体式脱硝催化剂在低温下的有希望的候选者,并且原位合成3D分层整体式催化剂的合理设计也提出了一种新的方法。环保,高活性整体式脱硝催化剂的开发。

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