TY - JOUR
T1 - Methane reforming with carbon dioxide over a Ni/ZiO2-SiO 2 catalyst
T2 - Influence of pretreatment gas atmospheres
AU - Liu, Dapeng
AU - Wang, Yifan
AU - Shi, Daming
AU - Jia, Xinli
AU - Wang, Xin
AU - Borgna, Armando
AU - Lau, Raymond
AU - Yang, Yanhui
PY - 2012/7
Y1 - 2012/7
N2 - Carbon dioxide reforming of methane to synthesis gas was studied over Ni/ZrO2eSiO2 catalyst under different pretreatment atmospheres. Characterization using powder X-ray diffraction, H2 temperature-programmed reduction, H2 temperature-programmed hydrogenation, TG/DTA, XPS, Raman spectra and transmission electron microscopy techniques revealed that gas atmospheres employed in the catalyst pretreatment have a significant influence on the catalytic performance. The helium-pretreated catalyst was found to be the most suitable catalyst for this application, showing the improved catalytic performance. More specifically, helium pretreatment facilitated the generation of welldistributed active metal sites while the heterogeneity of Ni components upon H2 pretreatment degraded catalytic activity of metal sites considerably. Pretreatment under CO atmosphere resulted in the formation of carbon encapsulated metal species thus causing catalyst deactivation severely. Inefficient reduction under CH4 activation and the presence of a great amount of carbonaceous species, disfavor the production of synthesis gas during the dry reforming.
AB - Carbon dioxide reforming of methane to synthesis gas was studied over Ni/ZrO2eSiO2 catalyst under different pretreatment atmospheres. Characterization using powder X-ray diffraction, H2 temperature-programmed reduction, H2 temperature-programmed hydrogenation, TG/DTA, XPS, Raman spectra and transmission electron microscopy techniques revealed that gas atmospheres employed in the catalyst pretreatment have a significant influence on the catalytic performance. The helium-pretreated catalyst was found to be the most suitable catalyst for this application, showing the improved catalytic performance. More specifically, helium pretreatment facilitated the generation of welldistributed active metal sites while the heterogeneity of Ni components upon H2 pretreatment degraded catalytic activity of metal sites considerably. Pretreatment under CO atmosphere resulted in the formation of carbon encapsulated metal species thus causing catalyst deactivation severely. Inefficient reduction under CH4 activation and the presence of a great amount of carbonaceous species, disfavor the production of synthesis gas during the dry reforming.
KW - Methane dry reforming
KW - Nickel catalyst
KW - Pretreatment gas
KW - Syngas production
KW - Zirconiaesilica
UR - http://www.scopus.com/inward/record.url?scp=84862181337&partnerID=8YFLogxK
U2 - 10.1016/j.ijhydene.2012.03.158
DO - 10.1016/j.ijhydene.2012.03.158
M3 - 文章
AN - SCOPUS:84862181337
SN - 0360-3199
VL - 37
SP - 10135
EP - 10144
JO - International Journal of Hydrogen Energy
JF - International Journal of Hydrogen Energy
IS - 13
ER -