A major cause of supported metal catalyst deactivation is particle growth by Ostwald ripening. Nickel catalysts, used in the methanation reaction, may suffer greatly from this through the formation of [Ni(CO)4]. By analyzing catalysts with various particle sizes and spatial distributions, the interparticle distance was found to have little effect on the stability, because formation and decomposition of nickel carbonyl rather than diffusion was rate limiting. Small particles (3-4 nm) were found to grow very large (20-200 nm), involving local destruction of the support, which was detrimental to the catalyst stability. However, medium sized particles (8 nm) remained confined by the pores of the support displaying enhanced stability, and an act...
The proximity of nanoparticles may affect the performance, in particular the stability, of supported...
Heterogeneous catalysts, which consist of many metal nanoparticles supported on highly porous, mecha...
Supported metal nanoparticles play a pivotal role in areas such as nanoelectronics, energy storage/c...
A major cause of supported metal catalyst deactivation is particle growth by Ostwald ripening. Nicke...
In heterogeneous catalysis, reactive gases often accelerate the growth of catalytically active metal...
Summarization: The structure sensitivity of CO2 methanation was explored over nickel particles (10–2...
Metallic nickel nanoparticles were prepared primarily as catalysts for the thermal decomposition of ...
Supported nickel nanoparticles are promising catalysts for the methanation of CO2. The role of nicke...
Stability of metal nanoparticles under reaction conditions is crucial in many catalytic processes. N...
Supported Ni catalyst, one of most important heterogeneous catalysts, is widely used for dehydrogena...
A series of alpha-Al2O3-supported Ni catalysts with different Ni particle sizes (5-10, 10-20, and 20...
The deactivation behavior by crystallite growth of nickel nanoparticles on various supports (carbon ...
Some fundamental concepts of catalysis are not fully explained but are of paramount importance for t...
Particle growth is a major deactivation mechanism for supported metal catalysts. This study reveals ...
The proximity of nanoparticles may affect the performance, in particular the stability, of supported...
Heterogeneous catalysts, which consist of many metal nanoparticles supported on highly porous, mecha...
Supported metal nanoparticles play a pivotal role in areas such as nanoelectronics, energy storage/c...
A major cause of supported metal catalyst deactivation is particle growth by Ostwald ripening. Nicke...
In heterogeneous catalysis, reactive gases often accelerate the growth of catalytically active metal...
Summarization: The structure sensitivity of CO2 methanation was explored over nickel particles (10–2...
Metallic nickel nanoparticles were prepared primarily as catalysts for the thermal decomposition of ...
Supported nickel nanoparticles are promising catalysts for the methanation of CO2. The role of nicke...
Stability of metal nanoparticles under reaction conditions is crucial in many catalytic processes. N...
Supported Ni catalyst, one of most important heterogeneous catalysts, is widely used for dehydrogena...
A series of alpha-Al2O3-supported Ni catalysts with different Ni particle sizes (5-10, 10-20, and 20...
The deactivation behavior by crystallite growth of nickel nanoparticles on various supports (carbon ...
Some fundamental concepts of catalysis are not fully explained but are of paramount importance for t...
Particle growth is a major deactivation mechanism for supported metal catalysts. This study reveals ...
The proximity of nanoparticles may affect the performance, in particular the stability, of supported...
Heterogeneous catalysts, which consist of many metal nanoparticles supported on highly porous, mecha...
Supported metal nanoparticles play a pivotal role in areas such as nanoelectronics, energy storage/c...