Employing a Nickel-Containing Supramolecular Framework as Ni Precursor for Synthesizing Robust Supported Ni Catalysts for Dry Reforming of Methane

This work presents a facile and efficient approach for preparing well dispersed supported Ni catalyst (HMA@Ni/SBA‐15) for dry reforming of methane (DRM) through the modified impregnation method by using a hexamethylenetetramine (HMA) Ni(II) complex, a three‐dimensional hydrogen‐bonded supramolecular...

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Bibliographic Details
Published inChemCatChem Vol. 8; no. 18; pp. 2939 - 2952
Main Authors Li, Weizuo, Zhao, Zhongkui, Guo, Xinwen, Wang, Guiru
Format Journal Article
LanguageEnglish
Published Weinheim Blackwell Publishing Ltd 21.09.2016
Wiley Subscription Services, Inc
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Summary:This work presents a facile and efficient approach for preparing well dispersed supported Ni catalyst (HMA@Ni/SBA‐15) for dry reforming of methane (DRM) through the modified impregnation method by using a hexamethylenetetramine (HMA) Ni(II) complex, a three‐dimensional hydrogen‐bonded supramolecular framework, as Ni precursor. By employing this method, the NiII cation was discretely impregnated into the mesoporous channels of SBA‐15 support by the “obstacle effect” of the HMA coordination shell of the Ni complex; and then the Ni nanoparticles were stabilized inside the mesoporous channels of SBA‐15 by the confinement effect. The developed HMA@Ni/SBA‐15 catalyst demonstrated much higher catalytic activity and much better catalytic stability than the traditional Ni/SBA‐15 towards this reaction. The superior catalytic activity was suggested to be associated with the enhanced Ni dispersion and the improved reduction degree of NiO. In addition, the confinement effect of mesopore channels and strengthened interaction between Ni and support by improved Ni dispersion contributed to stabilizing Ni particles during the reduction and reaction process at high temperature. The strengthened Ni–support interaction of HMA@Ni/SBA‐15 favored the formation of whisker‐like carbon, which did not depress the accessibility of Ni active sites. However, owing to the weaker Ni–support interaction, the clearly observed shell‐like carbon closely encapsulated on Ni nanoparticles of spent Ni/SBA‐15 would significantly depress the accessibility of Ni active sites to reactants. The combination of stabilized Ni nanoparticles and well‐kept Ni accessibility of HMA@Ni/SBA‐15 catalyst allows it to show outstanding catalytic stability for DRM reaction. The much superior catalytic activity and stability of the developed HMA@Ni/SBA‐15 catalyst to the traditional Ni/SBA‐15 make it a promising candidate for producing synthesis gas through DRM reaction. Confining Nickel: A supramolecular framework serves as the Ni precursor for preparing highly dispersed supported Ni catalyst for synthesis gas production through dry reforming of methane (DRM). The catalyst exhibited higher activity and stability for DRM reaction than traditional catalyst. The strategy developed in this work could pave a new avenue for fabricating highly dispersed supported metal catalyst for diverse transformations.
Bibliography:ark:/67375/WNG-W65T2875-7
ArticleID:CCTC201600448
Natural Science Foundation of Liaoning Province - No. 2015020200
istex:3BBE0CC8D7A08E4F592ABCB32745092D690DA3E3
Program for New Century Excellent Talents in University - No. NCET-12-0079
National Natural Science Foundation of China - No. 21276041
National Natural Science Foundation of China
Shenhua Co., Ltd. - No. U1261104
Chinese Ministry of Education
Fundamental Research Funds for the Central Universities - No. DUT15LK41
ISSN:1867-3880
1867-3899
DOI:10.1002/cctc.201600448