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Chinese Journal of Materials Research  2016, Vol. 30 Issue (2): 123-130    DOI: 10.11901/1005.3093.2015.088
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Preparation and Characterization of Ternary SCR Catalysts Consisted of Transition Metal Oxide, Zirconia and Ceira
LIU Haidi**(), LI Weiman, LI Wenhui, CHEN Yunfa
(State Key Laboratory of Multiphase Complex Systems, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China)
Cite this article: 

LIU Haidi, LI Weiman, LI Wenhui, CHEN Yunfa. Preparation and Characterization of Ternary SCR Catalysts Consisted of Transition Metal Oxide, Zirconia and Ceira. Chinese Journal of Materials Research, 2016, 30(2): 123-130.

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Abstract  

Ternary selective catalytic reduction (SCR) catalysts composed of transition metal oxide MxOy (M=Cr, Mn, V, Fe, Cu, Co), zirconia and ceria were prepared. The catalysts were characterized in terms of surface area, pore structure, crystal structure, element valence state, type of acidic sites and redox ability and catalytical properties by means of low-temperature N2 adsorption (BET), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), NH3-temperature programmed desorption (NH3-TPD) and H2-temperature programmed reduction (H2-TPR) methods. The results show that the ternary catalyst of Mn-Zr-Ce oxides exhibited good low-temperature (<200℃) activity, but poor high-temperature (>250℃) activity. The ternary catalyst of Cr-Zr-Ce oxides showed good and stable activity in the whole temperature range 100-300℃. The ternary catalyst of V-Zr-Ce oxides was very poor in catalyzing the SCR reaction at low temperature (<200℃), but exhibited better performance at high temperature (around 300℃). The sulphur-tolerance of the as-made samples were also investigated. All the phenomena observed were explained on the basis of the characterization results of the as-made samples.

Key words:  inorganic non-metallic materials      ceria      zirconia      transition metal      NOx      SCR     
Received:  15 February 2015     
ZTFLH:  TB321  
Fund: *Supported by the Strategic Priority Research Program B of Chinese Academy of Sciences No.XDB05050400, National Natural Science Foundation of China No.21107111, and Knowledge Innovation Project of Chinese Academy of Sciences No.KZCX2-EW-403
About author:  **To whom correspondence should be addressed, Tel: (010)82544893, E-mail: liuhaidi@ipe.ac.cn

URL: 

https://www.cjmr.org/EN/10.11901/1005.3093.2015.088     OR     https://www.cjmr.org/EN/Y2016/V30/I2/123

Sample BET surface area/m2g1 Average pore size /nm Pore volume 1)
/mLg1
SiO2 support 375.009 4.34 0.8146
Cr-Zr-Ce 370.948 4.24 0.8077
Mn-Zr-Ce 361.879 4.22 0.7788
V-Zr-Ce 369.467 3.98 0.7345
Fe-Zr-Ce 369.246 4.02 0.7810
Co-Zr-Ce 361.771 4.20 0.7969
Cu-Zr-Ce 368.375 4.16 0.7035
Table 1  BET surface area, average pore size and pore volume of the as-made samples doped with various metal ions
Fig.1  XRD spectra of sample
Fig.2  Catalytic results of various sample in temperature range of 100-300℃
Fig.3  H2-TPR profiles of various samples
Fig.4  NH3-TPD profiles of various samples
Fig.5  2p XPS spectra of various transition metals in as-made samples
Fig.6  3d XPS spectra of Ce in various samples
Fig.7  Sulphur resistance of sample Cr-Zr-Ce (a), Mn-Zr-Ce (b) and V-Zr-Ce (c)
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