Copper promotion of chromium-doped iron oxide prepared via co-precipitation for high-temperature water–gas shift (WGS) catalysis is investigated. Low-temperature Mössbauer spectra demonstrate that copper doping delays hematite (α-Fe2O3) formation in the fresh catalyst, favoring the formation of small crystallites of ferrihydrite (Fe5HO8∙4 H2O). Catalysts are treated under industrial WGS conditions at 360 °C (activity evaluation) and 450 °C (ageing) at 2 and 25 bar. Mössbauer spectra show that chromium is incorporated in octahedral sites of the active magnetite (Fe3O4) phase, resulting in a partially oxidized structure. Copper doping did not affect the bulk magnetite structure of the activated catalyst, which points to the presence of a sepa...
The commercial high‐temperature water‐gas shift (HT‐WGS) catalyst consists of CuO‐Cr2O3‐Fe2O3, where...
The water gas shift (WGS) reaction is of paramount importance for the chemical industry, as it const...
Chromium and copper-doped hematites were prepared with the aim of studying the synergistic effect of...
Copper promotion of chromium-doped iron oxide prepared via co-precipitation for high-temperature wat...
Copper promotion of chromium-doped iron oxide prepared via co-precipitation for high-temperature wat...
Chromium promotion of iron oxide based water-gas shift (WGS) catalysts prepared via co-precipitation...
The Cr and Cu promotion mechanisms of high temperature water–gas shift (HT-WGS) iron oxide catalysts...
The Cr and Cu promotion mechanisms of high temperature water–gas shift (HT-WGS) iron oxide catalysts...
A set of doped iron oxides (chromium, aluminum, gallium, indium, manganese, zinc, niobium) were prep...
Copper and chromium-doped magnetite was prepared to be used as catalysts, in the active phase, in th...
p. 51-59Copper and chromium-doped magnetite was prepared to be used as catalysts, in the active phas...
Chromium and copper-doped hematites were prepared with the aim of studying the synergistic effect of...
Finding a replacement for the toxic hexavalent chromium oxide in commercial iron oxide-based high te...
The commercial high‐temperature water‐gas shift (HT‐WGS) catalyst consists of CuO‐Cr2O3‐Fe2O3, where...
The water gas shift (WGS) reaction is of paramount importance for the chemical industry, as it const...
Chromium and copper-doped hematites were prepared with the aim of studying the synergistic effect of...
Copper promotion of chromium-doped iron oxide prepared via co-precipitation for high-temperature wat...
Copper promotion of chromium-doped iron oxide prepared via co-precipitation for high-temperature wat...
Chromium promotion of iron oxide based water-gas shift (WGS) catalysts prepared via co-precipitation...
The Cr and Cu promotion mechanisms of high temperature water–gas shift (HT-WGS) iron oxide catalysts...
The Cr and Cu promotion mechanisms of high temperature water–gas shift (HT-WGS) iron oxide catalysts...
A set of doped iron oxides (chromium, aluminum, gallium, indium, manganese, zinc, niobium) were prep...
Copper and chromium-doped magnetite was prepared to be used as catalysts, in the active phase, in th...
p. 51-59Copper and chromium-doped magnetite was prepared to be used as catalysts, in the active phas...
Chromium and copper-doped hematites were prepared with the aim of studying the synergistic effect of...
Finding a replacement for the toxic hexavalent chromium oxide in commercial iron oxide-based high te...
The commercial high‐temperature water‐gas shift (HT‐WGS) catalyst consists of CuO‐Cr2O3‐Fe2O3, where...
The water gas shift (WGS) reaction is of paramount importance for the chemical industry, as it const...
Chromium and copper-doped hematites were prepared with the aim of studying the synergistic effect of...