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x with NH 3 at Low Temperatures]]>

机译:<![CDATA [Fe-Mn混合氧化氧化物催化剂,通过单步尿素沉淀法合成NO <下标> <重点型=“斜体”> X ,NH < 低温下的下标> 3 ]]>

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摘要

AbstractA range of Fe–Mn mixed oxide catalysts, FeαMn1?αOx(α?=?1, 0.25, 0.33, 0.50, 0?mol%) were prepared via one-step urea-precipitation method and applied to the selective catalytic reduction (SCR) of nitric oxide (NOx) with NH3. The Fe0.33Mn0.66Oxcatalyst showed the highest activity in the NH3-SCR process within a broad operation temperature range (75–225?°C) with 90% NOxconversion. Series of characterization have been taken to investigate the physical and chemical properties of the catalysts. The BET results evidenced that the doping of iron species increased the surface area of the catalyst effectively, and this structure could provide more acid sites and active sites on the surface of catalysts for SCR reaction. X-ray powder diffraction results and Raman spectroscopy indicate that the active Mn and Fe species were in poorly crystalline or amorphous states which could increase lattice defects and oxygen vacancies on the surface of Fe0.33Mn0.66Oxcatalyst. The X-ray photoelectron spectra results suggested that more surface-adsorbed oxygen (OA), Fe3+, Mn4+species existed on the surface of the Fe0.33Mn0.66Oxcatalyst compared with that of MnOxand FeOxcatalysts, which is favorable to the NH3-SCR performance. Analysis by in situ Fourier transform infrared spectroscopy (FTIR) suggested that Fe-doping can enhance the absorption and the activation ability of NO which could promote the catalytic performance in the SCR process.Graphical AbstractCatalyst characterizationPowder X-ray diffraction (XRD) was carried out on a PAN alytical powder X-ray diffractometer (Model EMPYREAN) with a monochromatic Cu Kα1radiation (λ?=?0.154056 nm) within a 2θ range of 10°–90° in the step of 0.02° at room temperature. The Brunauer–Emmett–Teller (BET) surface areas of the samples were computed by physical adsorption of N2at ??196?°C using a NOVA 1200 (Quanta Chrome). The samples were pretreated at 300?°C for 5 h in a vacuum state previous to BET measurement. The high-resolution transmission electron microscopy (HR-TEM) determinations were conducted on a JEOL-2100 microscope. The Raman spectrums of samples were computed by a confocal Raman microscope (Labram DILOR) equipped with an Olympus BX-41 microscope (objective ×100) and TEcooled CCD detector (Andor), in a back-scattering configuration using an He–He laser (532 nm excitation line) with power of 510 mW at a sample and spectral resolution of 0.8 cm?1. X-ray photoelectron spectra (XPS) over the samples were by captured Al-Kα radiation (1486.7?eV). Binding energies of Mn 2p and O 1s were calibrated using C 1s (BE?=?285.0 eV) as a standard. The in situ FTIR experiments of NO adsorption over MnOxand Fe0.33Mn0.66Oxcatalysts were performed on a VERTEX70-FTIR. Prior to NO a
机译:<![cdata [ <标题>抽象 ara>一系列Fe-Mn混合氧化物催化剂,Fe <下标>α Mn <下标> 1?α O <下标> <重点类型=“斜体”> x (α?=?1,通过一步尿素沉淀法制制备0.25,0.33,0.50,0≤mol%,并施加到一氧化氮的选择性催化还原(SCR)(NO <下标> <强调类型=“斜体”> x )与NH <下标> 3 。 FE <下标> 0.33 MN <下标> 0.66 O <下标> <重点类型=“斜体”> x Catalyst在NH <下标中显示出最高活动> 3 -SCR过程在广泛的操作温度范围内(75-225?°C),90%NO <下标> <重点类型=“斜体”> x 转换。已经采取了一系列表征来研究催化剂的物理和化学性质。 BET结果证明了铁物种的掺杂有效地增加了催化剂的表面积,并且该结构可以在SCR反应的催化剂表面上提供更多的酸性位点和活性位点。 X射线粉末衍射结果和拉曼光谱表明,活性Mn和Fe物种在Fe <下标> 0.33 0.66表面上的晶格缺陷和氧空位中可能增加晶格缺陷和氧空位。 o x catalyst。 X射线光电子谱结果表明,更具表面吸附的氧气(O <下标> A ),FE <上标> 3 + ,Mn <上标> 4 + 物种存在FE <下标> 0.33 MN <下标> 0.66 O <下标> <重点类型=“斜体”> x Catalyst与MnO <下标> <重点类型=“斜体”> x <重点类型=“斜体”> x catalysts,它有利于nh <下标> 3 -scr性能。通过原位傅里叶变换红外光谱(FTIR)的分析表明,Fe-Doping可以增强NO的吸收和活化能力,这可以促进SCR过程中的催化性能。 <标题>图形摘要 ara> <强调型=”斜体“>催化剂表征粉末X射线衍射(XRD)在盘面非正面粉末X射线衍射仪上进行(模型eMPyrean)用单色CuKα<下标> 1 在室温下在0.02°的步长的2θ-90°的2θ范围内的辐射(λα= 0.154056nm)。使用Nova 1200(Quanta Chrome)通过N <下标> 2 的物理吸附来计算样品的Brunauer-emmett-experter(Bet)表面积。将样品在300℃下预处理5小时,在预防下注测量的真空状态下。在JEOL-2100显微镜上进行高分辨率透射电子显微镜(HR-TEM)测定。样品的拉曼光谱由配备有奥林巴斯BX-41显微镜(物镜×100)和纠正的CCD检测器(ANDOR)的奥林巴斯BX-41显微镜(物镜稀释液)计算,使用HE-HE激光( 532 nm激励线)在样品中的功率为510 mw,光谱分辨率为0.8cm <上标>Δ1。在样品上通过捕获的Al-Kα辐射(1486.7Δev),X射线光电子能谱(XPS)。使用C 1S(BE?= 285.0eV)作为标准校准Mn 2P和O 1S的结合能量。对MnO <下标> <重点类型=“斜体”> x 0.33 MN <下标> 0.66 o的原位FTIR实验 <重点类型=“斜体”> x Catalysts在Vertex70-FTIR上执行。在没有a之前

著录项

  • 来源
    《Catalysis Letters》 |2018年第1期|共8页
  • 作者单位

    State Key Laboratory of Fine Chemicals Key Laboratory of Industrial Ecology and Environmental Engineering (MOE) School of Environmental Science and Technology Dalian University of Technology;

    State Key Laboratory of Fine Chemicals Key Laboratory of Industrial Ecology and Environmental Engineering (MOE) School of Environmental Science and Technology Dalian University of Technology;

    State Key Laboratory of Fine Chemicals Key Laboratory of Industrial Ecology and Environmental Engineering (MOE) School of Environmental Science and Technology Dalian University of Technology;

    State Key Laboratory of Fine Chemicals Key Laboratory of Industrial Ecology and Environmental Engineering (MOE) School of Environmental Science and Technology Dalian University of Technology;

    Department Mechanical Engineering University of Wisconsin-Milwaukee;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 催化;
  • 关键词

    Low-temperature NH3-SCR; Manganese dioxide (Mn4+); Iron; XPS; In situ FTIR;

    机译:低温NH3-SCR;二氧化锰(MN4 +);铁;XPS;原位FTIR;

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