Title of article
Development of porous structure simulator for multi-scale simulation of irregular porous catalysts
Author/Authors
Michihisa Koyama، نويسنده , , Ai Suzuki، نويسنده , , Riadh Sahnoun، نويسنده , , Hideyuki Tsuboi، نويسنده , , Nozomu Hatakeyama، نويسنده , , Akira Endou، نويسنده , , Hiromitsu Takaba، نويسنده , , Momoji Kubo ، نويسنده , , Carlos A. Del Carpio، نويسنده , , Akira Miyamoto ، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2008
Pages
3
From page
7774
To page
7776
Abstract
Efficient development of highly functional porous materials, used as catalysts in the automobile industry, demands a meticulous knowledge of the nano-scale interface at the electronic and atomistic scale. However, it is often difficult to correlate the microscopic interfacial interactions with macroscopic characteristics of the materials; for instance, the interaction between a precious metal and its support oxide with long-term sintering properties of the catalyst. Multi-scale computational chemistry approaches can contribute to bridge the gap between micro- and macroscopic characteristics of these materials; however this type of multi-scale simulations has been difficult to apply especially to porous materials. To overcome this problem, we have developed a novel mesoscopic approach based on a porous structure simulator. This simulator can construct automatically irregular porous structures on a computer, enabling simulations with complex meso-scale structures. Moreover, in this work we have developed a new method to simulate long-term sintering properties of metal particles on porous catalysts. Finally, we have applied the method to the simulation of sintering properties of Pt on alumina support. This newly developed method has enabled us to propose a multi-scale simulation approach for porous catalysts.
Keywords
Sintering , Multi-scale simulation , Porous structure simulator , Pt/Al2O3 , Porous catalyst
Journal title
Applied Surface Science
Serial Year
2008
Journal title
Applied Surface Science
Record number
1009796
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