| Literature DB >> 31228315 |
Xiyang Wang1, Ziye Pan1, Xuefeng Chu2, Keke Huang1, Yingge Cong1, Rui Cao3, Ritimukta Sarangi3, Liping Li1, Guangshe Li1, Shouhua Feng1.
Abstract
Surface lattice oxygen in transition-metal oxides plays a vital role in catalytic processes. Mastering activation of surface lattice oxygen and identifying the activation mechanism are crucial for the development and design of advanced catalysts. A strategy is now developed to create a spinel Co3 O4 /perovskite La0.3 Sr0.7 CoO3 interface by in situ reconstruction of the surface Sr enrichment region in perovskite LSC to activate surface lattice oxygen. XAS and XPS confirm that the regulated chemical interface optimizes the hybridized orbital between Co 3d and O 2p and triggers more electrons in oxygen site of LSC transferred into lattice of Co3 O4 , leading to more inactive O2- transformed into active O2-x . Furthermore, the activated Co3 O4 /LSC exhibits the best catalytic activities for CO oxidation, oxygen evolution, and oxygen reduction. This work would provide a fundamental understanding to explain the activation mechanism of surface oxygen sites.Entities:
Keywords: electron transfer; electronic structure; perovskite; spinels; surface lattice oxygen
Year: 2019 PMID: 31228315 DOI: 10.1002/anie.201905543
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336