2019 AIChE Annual Meeting
(558br) Effect of Impregnation Strategy on the Performance of Pt/Ceria-Zirconia Low Temperature Reforming Catalysts
Authors
In our present work, the above stated samples were synthesized by either directly dissolving the Pt precursor (e.g. 2.7Ni-CZO-S) or using Pt nanoparticles (3.4 nm) obtained from colloidal synthesis involving a capping agent (PVP) (e.g. 2.7Ni-CZO-P). The Pt was impregnated alongside Ni/Mg onto the support using sequential impregnation. The samples containing the 3.4 nm Pt nanoparticles were washed to remove organics and some of these samples was further subjected to calcination (e.g 2.7Ni-CZO-C). The catalyst samples were characterized using powdered X-ray diffraction, N2-Physisorption, temperature-programmed reduction (TPR), and temperature programmed oxidation (TPO). Temperature-programmed experiments were performed to evaluate the activity of the catalysts for dry reforming. The results obtained indicate that conversion for the Ni containing samples follow the trend; 2.7Ni-CZO-P< 2.7Ni-CZO-S < 2.7Ni-CZO-C< 2.7Ni-CZO. Higher reactant conversion and H2:CO product ratio were obtained with the 0.50Mg-CZO sample in comparison to the 0.50Mg-CZO-S. This work will provide relevant knowledge on how the properties and structures of catalyst materials can be tuned to achieve optimal catalyst performance.