One-pot fabrication of an efficient 3D porous SiC based monolithic catalyst for methanol steam reforming via a carbon encapsulation strategy

被引:8
作者
Cheng, Zaizhe [1 ]
He, Lingjie [1 ]
Sun, Xiucheng [1 ]
Li, Yunzhi [1 ]
He, Xianglei [1 ]
Lan, Guojun [1 ]
Qiu, Yiyang [1 ]
Li, Ying [1 ]
机构
[1] Zhejiang Univ Technol, Inst Ind Catalysis, Chaowang Rd 18, Hangzhou 310014, Peoples R China
基金
中国国家自然科学基金;
关键词
Monolithic catalyst; Cu-based catalyst; Methanol steam reforming; Hydrogen; Carbon encapsulation strategy; GRADE HYDROGEN-PRODUCTION; COPPER FOAM; SURFACE MICROCHANNELS; COMBUSTION SYNTHESIS; CO2; HYDROGENATION; CU/ZNO CATALYSTS; SUPPORT; MICROREACTOR; SELECTIVITY; STABILITY;
D O I
10.1016/j.cej.2024.151094
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Methanol steam reforming (MSR) is an effective technique to produce hydrogen for fuel cell vehicles (FCVs). Monolithic catalyst with features of good thermal conductivity and 3D porous structure boosts the on-board MSR reaction activity. In comparison to traditional coating method, one -pot fabricated SiC based monolithic catalyst possesses advantages of higher loading amount and enhanced adhesion of active components. However, a notable challenge arises as the active sites become susceptible to coverage, and the porous structure tends to be obstructed by the binder during the fabrication procedure. Herein, a highly active 3D porous SiC based monolithic catalyst with carbon layers protected Cu/Al 2 O 3 was successfully fabricated, in which the carbon encapsulation structure serves as " protective umbrella " for active sites and porous structure. Complementary characterizations including Scanning electron microscope, Transmitted electron microscope, H 2 temperatureprogrammed reduction and N 2 O chemisorption are employed to disclose the protection mechanism of carbon layers. When the glass frit binder melts and infiltrates into the gaps among SiC and powder catalyst particles, the amorphous carbon outside alumina prevents the blockage of mesoporous structure, and the graphite carbon acts as the protectant outside the Cu nanoparticles. Subsequently, the carbon layers decompose, exposing the highly active Cu sites. This work presents a novel approach to the design and development of monolithic catalysts with high loading amount and enhanced loading strength of active components, which may exhibit broad applicability in the fabrication of other monolithic catalysts.
引用
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页数:11
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共 66 条
[1]   Influence of ambient gas on microwave-assisted combustion synthesis of CuO-ZnO-Al2O3 nanocatalyst used in fuel cell grade hydrogen production via methanol steam reforming [J].
Ajamein, Hossein ;
Haghighi, Mohammad .
CERAMICS INTERNATIONAL, 2016, 42 (16) :17978-17989
[2]   On the microwave enhanced combustion synthesis of CuO-ZnO-Al2O3 nanocatalyst used in methanol steam reforming for fuel cell grade hydrogen production: Effect of microwave irradiation and fuel ratio [J].
Ajamein, Hossein ;
Haghighi, Mohammad .
ENERGY CONVERSION AND MANAGEMENT, 2016, 118 :231-242
[3]   Insights into the Inducing Effect of Aluminum on Cu-ZnO Synergy for Methanol Steam Reforming [J].
Cheng, Zaizhe ;
Jiang, Chuan ;
Sun, Xiucheng ;
Lan, Guojun ;
Wang, Xiaolong ;
He, Lingjie ;
Li, Yunzhi ;
Tang, Haodong ;
Li, Ying .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2022, 61 (32) :11699-11707
[4]   High-performance Cu/ZnO/Al2O3 catalysts for methanol steam reforming with enhanced Cu-ZnO synergy effect via magnesium assisted strategy [J].
Cheng, Zaizhe ;
Zhou, Wenqiang ;
Lan, Guojun ;
Sun, Xiucheng ;
Wang, Xiaolong ;
Jiang, Chuan ;
Li, Ying .
JOURNAL OF ENERGY CHEMISTRY, 2021, 63 :550-557
[5]   Dependence of H2 and CO2 selectivity on Cu oxidation state during partial oxidation of methanol on Cu/ZnO [J].
Chi, Hao ;
Andolina, Christopher M. ;
Li, Jonathan ;
Curnan, Matthew T. ;
Saidi, Wissam A. ;
Zhou, Guangwen ;
Yang, Judith C. ;
Veser, Gotz .
APPLIED CATALYSIS A-GENERAL, 2018, 556 :64-72
[6]   Effect of calcium addition on catalytic ethanol steam reforming of Ni/Al2O3: I. Catalytic stability, electronic properties and coking mechanism [J].
Choong, Catherine K. S. ;
Zhong, Ziyi ;
Huang, Lin ;
Wang, Zhan ;
Ang, Thiam Peng ;
Borgna, Armando ;
Lin, Jianyi ;
Hong, Liang ;
Chen, Luwei .
APPLIED CATALYSIS A-GENERAL, 2011, 407 (1-2) :145-154
[7]   A flow-through catalytic membrane micro-reactor for hydrogen production by methanol steam reforming [J].
Fan, Senqing ;
Chen, Yu ;
Wang, Yilin ;
Huang, Huiyun ;
Bai, Ke ;
Wen, Haocun ;
Xiao, Zeyi ;
Bao, Zewei .
CHEMICAL ENGINEERING SCIENCE, 2023, 282
[8]   Copper zinc oxide nanocatalysts grown on cordierite substrate for hydrogen production using methanol steam reforming [J].
Fasanya, Opeoluw A. ;
Al-Hajri, Rashid ;
Ahmed, Omar U. ;
Myint, Myo T. Z. ;
Atta, Abdulazeez Y. ;
Jibril, Baba Y. ;
Dutta, Joydeep .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (41) :22936-22946
[9]   RAMAN CHARACTERIZATION STUDIES OF SYNTHETIC AND NATURAL MGAL2O4 CRYSTALS [J].
FRAAS, LM ;
MOORE, JE ;
SALZBERG, JB .
JOURNAL OF CHEMICAL PHYSICS, 1973, 58 (09) :3585-3592
[10]   Investigation of the Inhibiting Role of Hydrogen in the Steam Reforming of Methanol [J].
Gac, Wojciech ;
Zawadzki, Witold ;
Greluk, Magdalena ;
Slowik, Grzegorz ;
Machocki, Andrzej ;
Papavasiliou, Joan ;
Avgouropoulos, George .
CHEMCATCHEM, 2019, 11 (14) :3264-3278