Herein we present a comparative study on the water-induced formation of metal–support compounds from metallic cobalt in a simulated high conversion Fischer–Tropsch environment. Literature on the deactivation of supported cobalt catalysts via oxidation to cobalt(II) oxide or cobalt-support compounds is contradictory due to a lack of use in suitable model catalysts and insufficient direct characterization of the metallic cobalt phase under reaction conditions. The particular carrier materials stabilize the active cobalt nanoparticles, but also dictate the likelihood of the formation of nonactive cobalt-support compounds. In this study, well-defined cobalt nanoparticles of 5 nm were deposited on alumina, silica, and three titania carriers. The...
The nanoscale distribution of the supported metal phase is an important property for highly active, ...
Supported cobalt (Co) catalysts are the preferred catalysts for Fischer-Tropsch synthesis (FTS) base...
It has been reported that cobalt aluminate formation is a cause of deactivation during Fischer–Trops...
Herein we present a comparative study on the water-induced formation of metal–support compounds from...
Herein we present a comparative study on the water-induced formation of metal–support compounds from...
The Fischer-Tropsch synthesis as a large-scale industrial process converts a mixture of carbon monox...
Only little is known about the formation and morphology of metal-support compounds (MSCs) in heterog...
A Co/C model catalyst was exposed to increasing partial pressures of water simulating high Fischer–T...
Activity and stability of cobalt nanoparticles supported on mesoporous oxides is of extreme importan...
Understanding the deactivation mechanism of cobalt-based Fischer-Tropsch catalysts is of significant...
The formation of mixed-metal cobalt oxides, representing potential metal–support compounds for cobal...
Cobalt catalysts as used in the Fischer-Tropsch synthesis (FTS) are relatively expensive (as compare...
The oxidation of nanosized metallic cobalt to cobalt oxide during Fischer–Tropsch synthesis has long...
The study of titania-supported cobalt nanoparticles is relevant for industrial Fischer-Tropsch synth...
The nanoscale distribution of the supported metal phase is an important property for highly active, ...
Supported cobalt (Co) catalysts are the preferred catalysts for Fischer-Tropsch synthesis (FTS) base...
It has been reported that cobalt aluminate formation is a cause of deactivation during Fischer–Trops...
Herein we present a comparative study on the water-induced formation of metal–support compounds from...
Herein we present a comparative study on the water-induced formation of metal–support compounds from...
The Fischer-Tropsch synthesis as a large-scale industrial process converts a mixture of carbon monox...
Only little is known about the formation and morphology of metal-support compounds (MSCs) in heterog...
A Co/C model catalyst was exposed to increasing partial pressures of water simulating high Fischer–T...
Activity and stability of cobalt nanoparticles supported on mesoporous oxides is of extreme importan...
Understanding the deactivation mechanism of cobalt-based Fischer-Tropsch catalysts is of significant...
The formation of mixed-metal cobalt oxides, representing potential metal–support compounds for cobal...
Cobalt catalysts as used in the Fischer-Tropsch synthesis (FTS) are relatively expensive (as compare...
The oxidation of nanosized metallic cobalt to cobalt oxide during Fischer–Tropsch synthesis has long...
The study of titania-supported cobalt nanoparticles is relevant for industrial Fischer-Tropsch synth...
The nanoscale distribution of the supported metal phase is an important property for highly active, ...
Supported cobalt (Co) catalysts are the preferred catalysts for Fischer-Tropsch synthesis (FTS) base...
It has been reported that cobalt aluminate formation is a cause of deactivation during Fischer–Trops...