Understanding the Role of Pr Doping in Redox Enhancement of CeO <sub>2</sub> for the Reverse Water–Gas Shift via Chemical Looping
Takuma Higo, Koki Saegusa, S. Ishizaki, Sota Kakihara, Yoshihiro Yayama, Yuichiro Hirano, Yasushi Sekine
Waseda University Eneos (Japan)
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High Resolution Image Download MS PowerPoint Slide Fluorite-type CeO 2 was examined as an oxygen carrier material for the chemical looping reverse water–gas shift (RWGS-CL) for effective conversion of CO 2 to CO, and potential dopants to enhance its redox properties were explored through a combination of theoretical calculations and experimental investigations. A strong correlation was observed between the oxygen vacancy formation energy, calculated using neural network potential (NNP) calculations, and the experimentally determined reduction rate under a H 2 atmosphere, leading to the identification of praseodymium (Pr) as a promising dopant. The redox performance of Pr-doped CeO 2 improved with increasing doping ratio, with Ce 0.67 Pr 0.33 O 2 exhibiting the highest CO 2 splitting capacity. In situ X-ray absorption fine structure (XAFS) analysis confirmed that Pr doping promotes the Ce 4+ ↔ Ce 3+ redox cycle during the RWGS-CL process at 773 K. Furthermore, NNP-based calculations revealed that Pr doping induces a positive shift in the charge of Ce atoms, thereby enhancing the redox capacity of the Pr-doped system.
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材料 / 化学Catalytic Processes in Materials Science
Catalysis and Oxidation Reactions · Chemical Looping and Thermochemical Processes
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