Bimetallic NiFe nanoparticles supported on CeO2 as catalysts for methane steam reforming

Ni-Fe nanocatalysts supported on CeO2 have been prepared for the catalysis of methane steam reforming (MSR) aiming for coke-resistant noble metal-free catalysts. The catalysts have been synthesized by traditional incipient wetness impregnation as well as dry ball milling, a green and more sustainabl...

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Detalhes bibliográficos
Autores: Braga, Andrea, Armengol Profitós, Marina, Pascua Solé, Laia|||0000-0001-9791-4586, Vendrell Villafruela, Xavier|||0000-0003-4705-8253, Soler Turu, Lluís|||0000-0003-1591-3366, Serrano Carreño, M. Isabel|||0000-0002-4996-9280, Villar García, Ignacio J., Pérez Dieste, Virginia, Jiménez Divins, Nuria|||0000-0001-6010-5419, Llorca Piqué, Jordi|||0000-0002-7447-9582
Tipo de documento: artigo
Data de publicação:2023
País:España
Recursos:Universitat Politècnica de Catalunya (UPC)
Repositório:UPCommons. Portal del coneixement obert de la UPC
Idioma:inglês
OAI Identifier:oai:upcommons.upc.edu:2117/389723
Acesso em linha:https://hdl.handle.net/2117/389723
https://dx.doi.org/10.1021/acsanm.3c00104
Access Level:Acceso aberto
Palavra-chave:Catalysis
Hydrogen
Mechanical chemistry
Ambient-pressure X-ray photoelectron spectroscopy
Bimetallic catalyst
Cerium oxide
Mechanochemistry
Methane steam reforming
Nickel-iron
Catàlisi
Hidrogen
Química mecànica
Àrees temàtiques de la UPC::Enginyeria química
Descrição
Resumo:Ni-Fe nanocatalysts supported on CeO2 have been prepared for the catalysis of methane steam reforming (MSR) aiming for coke-resistant noble metal-free catalysts. The catalysts have been synthesized by traditional incipient wetness impregnation as well as dry ball milling, a green and more sustainable preparation method. The impact of the synthesis method on the catalytic performance and the catalysts’ nanostructure has been investigated. The influence of Fe addition has been addressed as well. The reducibility and the electronic and crystalline structure of Ni and Ni-Fe mono- and bimetallic catalysts have been characterized by temperature programmed reduction (H2-TPR), in situ synchrotron X-ray diffraction (SXRD), X-ray photoelectron spectroscopy (XPS), and Raman spectroscopy. Their catalytic activity was tested between 700 and 950 °C at 108 L gcat-1 h-1 and with the reactant flow varying between 54 and 415 L gcat-1 h-1 at 700 °C. Hydrogen production rates of 67 mol gmet-1 h-1 have been achieved. The performance of the ball-milled Fe0.1Ni0.9/CeO2 catalyst was similar to that of Ni/CeO2 at high temperatures, but Raman spectroscopy revealed a higher amount of highly defective carbon on the surface of Ni-Fe nanocatalysts. The reorganization of the surface under MSR of the ball-milled NiFe/CeO2 has been monitored by in situ near-ambient pressure XPS experiments, where a strong reorganization of the Ni-Fe nanoparticles with segregation of Fe toward the surface has been observed. Despite the catalytic activity being lower in the low-temperature regime, Fe addition for the milled nanocatalyst increased the coke resistance and could be an efficient alternative to industrial Ni/Al2O3 catalysts.