Synergistic synthesis optimisation and B-site substitution engineering boost low-temperature CO oxidation over LaFeO 3 perovskite catalysts
This study develops a dual strategy of synthesis optimisation and B-site substitution to improve low-temperature CO oxidation of LaFeO3 perovskites. A modified co-precipitation method uses organic additives (F127, sucrose, citric acid) as surface area promoters and an ammonia precipitant. Four-factor three-level orthogonal experiments optimise pH, calcination temperature/time and additive type. Calcination temperature dominates performance, followed by additive species, calcination time and pH. The optimal catalyst (pH = 10, 800 °C, 3 hours, citric acid) attains 99.1% CO conversion at 300 °C via enlarged surface area and evenly distributed active phases. 20% Co substitution for Fe creates abundant lattice defects and oxygen vacancies in LaFe0.8Co0.2O3, boosting oxygen mobility and redox ability. It realises full CO conversion at 225 °C, 75 °C lower than pure LaFeO3 with stable structure. Ni/Cu/Mn doping comparisons confirm Co's optimal promotion. This work proves synergistic nanostructure modulation and defect engineering to fabricate efficient perovskites and guides low-temperature CO removal.
Authors
- Jiayi Zeng
- Xilong Wang (ORCID: https://orcid.org/0000-0002-7264-9621)
- Jiaxin Song
- Chao Liu
- Xingyue Yang
- Ke Yu
- Long Tang
- Jiaqi Hou
- Dong Li
Institutions
- China University of Petroleum, Beijing (CN)
- Shenyang Normal University (CN)
- Daqing Normal University (CN)
- State Key Laboratory of Heavy Oil (CN)
Publication Details
- Journal
- Journal of Experimental Nanoscience
- Published
- 2026-10-09
- DOI
- https://doi.org/10.1080/17458080.2026.2742511
- Primary Topic
- Catalytic Processes in Materials Science
- Type
- article
- Field-Weighted Citation Impact
- 0.00