Steam‐Activated Lattice Oxygen Enhances Interfacial Redox Stability for Low‐Temperature N <sub>2</sub> O Decomposition over Rh/CeO <sub>2</sub>
Abstract
Abstract Activation of surface lattice oxygen is crucial for enabling low‐temperature catalytic oxidation reactions. While earlier studies have hinted that steam treatment could enhance the activity of lattice oxygen in CeO 2 supported catalysts, the mechanistic understanding remains superficial. Here, we unravel the origin and role of steam‐activated lattice oxygen in promoting low‐temperature N 2 O decomposition. Using a combination of isotope‐labeled steam (H 2 18 O), in situ ambient‐pressure X‐ray photoelectron spectroscopy (AP‐XPS), and in situ X‐ray absorption spectroscopy (XAS), we provide direct evidence that high‐temperature steam induces lattice oxygen activation at the Rh–CeO 2 interface. These activated oxygen species facilitate oxygen desorption and enhance the redox cycling stability of Rh and Ce species, dramatically improving catalytic activity at low temperatures. Our findings reveal a previously overlooked pathway for surface lattice oxygen activation and offer mechanistic insights to guide the rational design of efficient low‐temperature redox catalysts.
Article Details
Authors (14)
Ningqiang Zhang
Chenxi He
Hokkaido University , , N-21, W-10 , ,
Yuan Jing
Institute for Catalysis, Hokkaido University, N-21, W-10, Sapporo 001-0021, Japan
Yucheng Qian
Yuan Qin
Hong Lin
Minami Obuchi
Department of Chemistry Keio University 3‐14‐1 Hiyoshi Kohoku‐ku Yokohama 223‐8522 Japan
Ryo Toyoshima
The University of Tokyo , , 7-3-1 Bunkyo , ,
Hiroshi Kondoh
Keio University , , 3-14-1 Hiyoshi, Kohoku-ku , ,
Kohei Oka
Isuzu Advanced Engineering Center, Ltd. 8 Tsuchidana Fujisawa 252‐0881 Japan
Lingcong Li
Akihiko Anzai
Hokkaido University , , N-21, W-10 , ,
Takashi Toyao
Hokkaido University , , N-21, W-10 , ,
Ken‐ichi Shimizu
Institute for Catalysis Hokkaido University Sapporo Japan