催化作用
材料科学
氧化物
纳米颗粒
大气温度范围
化学工程
解吸
纳米技术
吸附
冶金
化学
物理化学
有机化学
物理
工程类
气象学
作者
Bora Ye,Bora Jeong,Minwoo Lee,Hong‐Dae Kim,Jeong Min Baik
标识
DOI:10.1002/admt.201800462
摘要
Abstract A facile strategy to produce low‐temperature De‐NO x extruded monolithic catalysts based on the highly dispersive Mn–Ce oxide nanoparticles of low Ce content is described. The design of the materials is based on dual supports composed of reduced graphene oxide and TiO 2 , which is made by Mn–Ce oxide nanoparticles well separated on the supports without any agglomeration. Compared to the catalysts with only TiO 2 support, the specific surface area of the catalysts is significantly increased by 2.8 times. The temperature‐programmed desorption analysis of NH 3 shows that the number of Lewis acid sites increases; thus, the binding strength of the NH 3 at the surface of the oxides is also increased. Through the temperature‐programmed reduction of the H 2 , the rate of the reduction reaction also increases. Thus, the efficiency of the overall De‐NO x reaction increases to 90% with a lower Ce content of 40% at 250 °C and shows good stability at a high temperature of 300 °C. By using the above‐mentioned catalysts, a honeycomb‐type extruded monolithic product with De‐NO x efficiency higher than 90% in the temperature range between 200 and 300 °C is made without any additional binders. This indicates a good formability, enough for the fabrication of the commercialized products.
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