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◆ Environmental Science & Technology2026-01-14· Catalysis

Machine Learning-Guided Design of Catalysts with SO <sub>2</sub> Resistance for Low-Temperature NH <sub>3</sub> –SCR Reaction

Huazhen Chang, Xinyi Miao, Haohui Chen, Lei Qiu, Guanglei Li, Chizhong Wang, Junhua Li, Bing Li, Lei Ma

原始摘要(英文原文)· Original abstract
The design of efficient catalysts to mitigate SO 2 poisoning in low-temperature Selective Catalytic Reduction of NO x (LT-SCR) is challenging. Herein, machine learning (ML) was employed to design catalysts with SO 2 resistance. A multidimensional data set containing 242 data points was constructed, including elemental descriptors, catalyst structures, reaction conditions, and SO 2 poisoning conditions. Regression models such as XGBoost (XGB) were trained to predict NO x conversions and SO 2 resistance over different catalysts. It was found that the electronegativity descriptor (EN.) was the critical factor influencing NO x conversions in the presence of SO 2, with approximately a monotonic positive correlation trend with NO x conversions within the range of 0.7–0.8. Based on these findings, quaternary CeMoFe/Ti catalysts were further synthesized via an inverse design. It was observed that this catalyst could still maintain 60% NO x conversion in the presence of SO 2 after 6 h at 250 °C, wherein the SO 2 resistance was significantly improved compared to ternary CeMo/Ti (∼40%) and binary Ce/Ti (∼4%) catalysts. In addition, the ML revealed the core roles of EN. in the design of SO 2 resistance catalysts, breaking through the limitations of traditional ternary catalyst systems. This study provided a data-driven paradigm for precise design of SO 2 resistance catalysts for the LT-SCR reaction, holding promise to accelerate the research and development of effective catalysts.
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Machine Learning-Guided Design of Catalysts with SO <sub>2</sub> Resistance for Low-Temperature NH <sub>3</sub> –SCR Reaction — 科研速览 Science Skim