Electron transferring with oxygen defects on Ni-promoted Pd/Al 2 O 3 catalysts for low-temperature lean methane combustion

Methane (CH ) is the second most consequential greenhouse gas after CO , with a substantial global warming potential. The CH catalytic combustion offers an efficient method for the elimination of CH . However, improving the catalytic performance of Pd-based materials for low-temperature CH combustio...

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Veröffentlicht in:Journal of colloid and interface science 2024-10, Vol.671, p.712
Hauptverfasser: Cai, Jieying, Wang, Jingyi, Liu, Congwei, Zhang, Yan, Liu, Yun, Wang, Peng, Wang, Xuehai, Fang, Xiangchen, Yu, Yunbo, Shan, Wenpo
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Sprache:eng
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Zusammenfassung:Methane (CH ) is the second most consequential greenhouse gas after CO , with a substantial global warming potential. The CH catalytic combustion offers an efficient method for the elimination of CH . However, improving the catalytic performance of Pd-based materials for low-temperature CH combustion remains a big challenge. In this study, we synthesized an enhanced Pd/5NiAlO catalyst that demonstrated superior catalytic activity and improved water resistance compared to the Pd/Al O catalyst. Specifically, the T was decreased by over 100 °C under both dry and wet conditions. Introducing Ni resulted in an enormously enhanced number of oxygen defects on the obtained 5NiAlO support. This defect-rich support facilitates the anchoring of PdO through increased electron transfer, thereby inhibiting the production of high-valence Pd and stimulating the generation of unsaturated Pd sites. Pd can effectively activate surface oxygen and PdO plays a significant role in activating CH , resulting in high activity for Pd/5NiAlO . On the other hand, the increased water resistance of Pd/5NiAlO was mainly due to the generation of *OOH species and the lower accumulation of surface -OH species during the reaction process.
ISSN:1095-7103
DOI:10.1016/j.jcis.2024.05.196