An active surface science model for the Phillips ethylene polymerization catalyst has been prepared by impregnating aqueous CrO3 on a flat silicium(100) substrate covered by amorphous silica. Using a combination of X-ray photoelectron spectroscopy, secondary ion mass spectrometry, and Rutherford backscattering spectrometry, we studied the effect of calcination on the state of the supported chromium. Depending on the calcination temperature and the initial Cr loading of the catalyst, two processes are observed. The impregnated chromate anchors to the silica surface in an esterification reaction with the surface silanol groups of the support. The saturation coverage of these surface chromates is 2.4 Cr/nm2 for a calcination temperature of 450...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
\u3cp\u3eA surface science model for the Phillips ethylene polymerization catalyst has been prepared...
A surface science model for the Phillips ethylene polymerization catalyst has been prepared, by impr...
An active surface science model for the Phillips ethylene polymerization catalyst has been prepared ...
An active surface science model for the Phillips ethylene polymerization catalyst has been prepared ...
An active surface science model for the Phillips ethylene polymerization catalyst has been prepared ...
An active surface science model for the Phillips ethylene polymerization catalyst has been prepared ...
A series of CrOx/SiO2/Si(100) model catalysts were tested for ethylene polymerization activity, vary...
A series of CrOx/SiO2/Si(100) model catalysts were tested for ethylene polymerization activity, vary...
A series of CrOx/SiO2/Si(100) model catalysts were tested for ethylene polymerization activity, vary...
A series of CrOx/SiO2/Si(100) model catalysts were tested for ethylene polymerization activity, vary...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
\u3cp\u3eA surface science model for the Phillips ethylene polymerization catalyst has been prepared...
A surface science model for the Phillips ethylene polymerization catalyst has been prepared, by impr...
An active surface science model for the Phillips ethylene polymerization catalyst has been prepared ...
An active surface science model for the Phillips ethylene polymerization catalyst has been prepared ...
An active surface science model for the Phillips ethylene polymerization catalyst has been prepared ...
An active surface science model for the Phillips ethylene polymerization catalyst has been prepared ...
A series of CrOx/SiO2/Si(100) model catalysts were tested for ethylene polymerization activity, vary...
A series of CrOx/SiO2/Si(100) model catalysts were tested for ethylene polymerization activity, vary...
A series of CrOx/SiO2/Si(100) model catalysts were tested for ethylene polymerization activity, vary...
A series of CrOx/SiO2/Si(100) model catalysts were tested for ethylene polymerization activity, vary...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
Depositing catalytically active particles onto flat, thin and oxidic support forms an attractive way...
\u3cp\u3eA surface science model for the Phillips ethylene polymerization catalyst has been prepared...
A surface science model for the Phillips ethylene polymerization catalyst has been prepared, by impr...