Calcium-Mediated Reconfiguration and Turnover of Surface Lattice Oxygen in γ-MnO2 for Promoted NO Oxidation Catalysis

Abstract NO-to-NO2 oxidation is critical for improving NOx abatement efficiency, yet it relies on costly platinum-group metals (PGMs) as catalysts. Transition-metal oxides, such as MnO2, are promising PGM alternatives, but their performance is limited by the insufficient reactivity and mobility of surface lattice oxygen. Here, we show that trace Ca doping can reconfigure the chemistry and availability of surface lattice oxygen in γ-MnO2, and an optimized Ca loading of 0.6 wt % increased the NO conversion from 36% to 65% at 300 °C. Such promotion was sustained in repeated runs and after hydrothermal aging at 800 °C. Combined Raman spectroscopy, XPS, O2-TPD and H2-TPR investigations show that Ca induced a measurable Mn–O lattice perturbation and a more electron-deficient surface environment on the γ-MnO2, thereby increasing the availability of surface lattice oxygen and favoring Mn redox. A semi-quantitative empirical descriptor integrating these two factors, namely surface lattice oxygen availability and Mn redox, was developed and found to correlate linearly with NO conversion over 150–300 °C, emphasizing their synergistic contribution to NO oxidation catalysis. Temperature-programmed desorption and in situ infrared spectroscopy (both with NO or NO + O2 as the probe) further revealed that Ca doping promoted NO activation while suppressing the accumulation of undesired nitrate/nitrite intermediates. This work paves a new avenue of oxygen-chemistry-centered optimization of MnOx-based catalysts for high-efficiency NO oxidation.

Authors

Institutions

Publication Details

Journal
Environmental Science & Technology
Published
2026-09-09
DOI
https://doi.org/10.1021/acs.est.6c04949
Primary Topic
Catalytic Processes in Materials Science
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Calcium-Mediated Reconfiguration and Turnover of Surface Lattice Oxygen in γ-MnO2 for Promoted NO Oxidation Catalysis

Huarong Lei, Mingli Fu, Hailin Xiao, Daiqi Ye et al.
Environmental Science & Technology
Catalytic Processes in Materials Science
article

Calcium-Mediated Reconfiguration and Turnover of Surface Lattice Oxygen in γ-MnO2 for Promoted NO Oxidation Catalysis

Huarong Lei, Mingli Fu, Hailin Xiao, Daiqi Ye, Xin Xu, Xiaoyu Zhang, Peirong Chen, Magdalena Jabłońska, Haitao Zhou
article en

Abstract

Abstract NO-to-NO2 oxidation is critical for improving NOx abatement efficiency, yet it relies on costly platinum-group metals (PGMs) as catalysts. Transition-metal oxides, such as MnO2, are promising PGM alternatives, but their performance is limited by the insufficient reactivity and mobility of surface lattice oxygen. Here, we show that trace Ca doping can reconfigure the chemistry and availability of surface lattice oxygen in γ-MnO2, and an optimized Ca loading of 0.6 wt % increased the NO conversion from 36% to 65% at 300 °C. Such promotion was sustained in repeated runs and after hydrothermal aging at 800 °C. Combined Raman spectroscopy, XPS, O2-TPD and H2-TPR investigations show that Ca induced a measurable Mn–O lattice perturbation and a more electron-deficient surface environment on the γ-MnO2, thereby increasing the availability of surface lattice oxygen and favoring Mn redox. A semi-quantitative empirical descriptor integrating these two factors, namely surface lattice oxygen availability and Mn redox, was developed and found to correlate linearly with NO conversion over 150–300 °C, emphasizing their synergistic contribution to NO oxidation catalysis. Temperature-programmed desorption and in situ infrared spectroscopy (both with NO or NO + O2 as the probe) further revealed that Ca doping promoted NO activation while suppressing the accumulation of undesired nitrate/nitrite intermediates. This work paves a new avenue of oxygen-chemistry-centered optimization of MnOx-based catalysts for high-efficiency NO oxidation.

Environmental Science & Technology
Tamkang University (TW), South China University of Technology (CN)
Openalex Percentile: Top 24%
Catalytic Processes in Materials Science
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.