Temperature-driven mechanistic transition in propylene oxidation over Pt/CeO2 ensemble catalysts

Z Zihao Li (State Key Laboratory of Solidification Processing, Center for Nano Energy Materials, School of Materials Science and Engineering) X Xingyan Chen (Hefei National Research Center for Physical Sciences at the Microscale and School of Chemistry and Materials Science) Y Yao Lv S Sheng Dai H Huazhen Chang Z Zhenguo Li K Kailong Ye (Department of Chemical and Environmental Engineering, Bourns College of Engineering, Center for Environmental Research and Technology (CE-CERT), Materials Science and Engineering (MSE) Program, UCR Center for Catalysis) F Fudong Liu (Department of Chemical and Environmental Engineering, Bourns College of Engineering, Center for Environmental Research and Technology (CE-CERT), Materials Science and Engineering (MSE) Program, UCR Center for Catalysis) L Lei Ma N Naiqiang Yan

Abstract

Abstract Pt/CeO2 ensemble catalysts are promising for propylene (C3H6) oxidation in vehicle exhaust, yet identifying the intrinsic active sites and understanding how the metal-support interface evolves at varying reaction temperatures remains contentious. Herein, we demonstrate that H2-activated Pt/CeO2 ensemble catalysts feature metallic Pt ensembles as intrinsic active sites, lowering the 50% conversion temperature by 120 °C after hydrogen activation. Various operando characterization techniques reveal an approximately 170 °C threshold temperature for the dynamic change of the reaction models. Meanwhile, kinetics and theoretical analysis illustrates that oxygen-facilitated dehydrogenation of sp 3 C-H bonds is the rate-determining step. At low temperatures, both C3H6 and O2 adsorb and activate on metallic Pt, without CeO2 involvement. Once the temperature exceeds threshold, C3H6 fully covers Pt sites, while O2 activates over Pt-O-Ce interfaces and participates in dehydrogenation. This study highlights the dynamic nature of oxygen activation, leading to distinct reaction temperature regimes during C3H6 oxidation.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 16, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (10)

Z

Zihao Li

State Key Laboratory of Solidification Processing, Center for Nano Energy Materials, School of Materials Science and Engineering

X

Xingyan Chen

Hefei National Research Center for Physical Sciences at the Microscale and School of Chemistry and Materials Science

Y

Yao Lv

S

Sheng Dai

H

Huazhen Chang

Z

Zhenguo Li

K

Kailong Ye

Department of Chemical and Environmental Engineering, Bourns College of Engineering, Center for Environmental Research and Technology (CE-CERT), Materials Science and Engineering (MSE) Program, UCR Center for Catalysis

F

Fudong Liu

Department of Chemical and Environmental Engineering, Bourns College of Engineering, Center for Environmental Research and Technology (CE-CERT), Materials Science and Engineering (MSE) Program, UCR Center for Catalysis

L

Lei Ma

N

Naiqiang Yan