Related Experiment Video
Updated: Jan 10, 2026

A Continuous-flow Photocatalytic Reactor for the Precisely Controlled Deposition of Metallic Nanoparticles
Published on: April 10, 2019
Plasma-Induced Defect Engineering in Pt-Doped Perovskite Oxide Enhances Catalytic Oxidation via Strengthened
Lei Li1, Yanjie Liang2, Ran Yu1
1College of Chemistry and Chemical Engineering, Yancheng Institute of Technology, Jiangsu 224051, China.
Abstract:
Perovskite oxides, despite their excellent thermal stability, are often limited in heterogeneous catalysis by insufficient exposure of active sites and low oxygen activity. Thermal plasma technology, capable of inducing surface and bulk structural reconstruction, represents an effective solution. Herein, Pt-doped LaMO3 (M = Mn, Co, or Fe) perovskites are modified by high-temperature O2 plasma treatment and evaluated in CO and toluene oxidation reactions. The designed plasma treatment significantly promotes the formation of surface defects, particularly oxygen vacancies (Ov). These defects not only stabilize metallic Pt (Pt0) species, but also facilitate the migration and surface exposure of Pt species from the bulk, thereby constructing abundant, highly active, and stable Pt0-Ov-Mn3+ synergistic active sites. They significantly enhance reactive oxygen species cycling, effectively promoting the adsorption and activation of CO and toluene, and thus enabling efficient low-temperature catalytic oxidation. Plasma-activated Pt-doped LaMnO3 reduces the temperature for complete CO conversion by 40 °C and decreases the T90 temperature for toluene conversion by nearly 80 °C. This work presents a universal plasma-activated strategy for designing high-performance noble-metal-based perovskite catalysts, holding significant promise for environmental catalysis.

