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.

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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
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article

Synergistic synthesis optimisation and B-site substitution engineering boost low-temperature CO oxidation over LaFeO 3 perovskite catalysts

Jiayi Zeng, Xilong Wang, Jiaxin Song, Chao Liu et al.
Journal of Experimental Nanoscience
Catalytic Processes in Materials Science
article

Synergistic synthesis optimisation and B-site substitution engineering boost low-temperature CO oxidation over LaFeO 3 perovskite catalysts

Jiayi Zeng, Xilong Wang, Jiaxin Song, Chao Liu, Xingyue Yang, Ke Yu, Long Tang, Jiaqi Hou, Dong Li
article en

Abstract

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.

Journal of Experimental NanoscienceVol. 21(1)
China University of Petroleum, Beijing (CN), Shenyang Normal University (CN), Daqing Normal University (CN), State Key Laboratory of Heavy Oil (CN)
Openalex Percentile: Top 27%
Catalytic Processes in Materials Science
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Synergistic synthesis optimisation and B-site substitution engineering boost low-temperature CO oxidation over LaFeO 3 perovskite catalysts — Jiayi Zeng, Xilong Wang, et al. · Journal of Experimental Nanoscience (2026) | TGRS Research Map | TGRS