Light‐Induced Fe‐LMCT Catalysis for Redox‐Coupled Conversion of NO <sub>x</sub> and SO <sub>2</sub> Mixture
Abstract
Abstract The coexistent nitrogen oxides (NO x ) and sulfur dioxide (SO 2 ) in flue gas pose inherent challenges for simultaneous removal due to their disparate reactivities. Conventional sequential treatments for their simultaneous removal face major issues of catalyst deactivation and byproduct generation. Here, we develop a subtle strategy using light‐induced ligand‐to‐metal charge transfer (LMCT) catalysis with Fe(II) ethylenediaminetetraacetic acid (EDTA‐Feᴵᴵ) to achieve redox‐coupled conversion of NO and SO 2 mixtures. LMCT excitation in EDTA‐Fe II induces directional charge separation under irradiation, routing photogenerated electrons (e⁻) to Feᴵᴵ for driving selective NO‐to‐N 2 conversion (selectivity: 99.89%), while photogenerated holes (h + ) oxidize SO 2 to SO 4 2 ⁻ (selectivity: 96.34%). This spatial segregation of redox pathways suppresses N 2 O generation, enabling continuous operation with 90.3% NO and nearly 100% SO 2 removal efficiency. Mechanism studies reveal the LMCT‐enhanced charge transfer from carboxyl/amino groups to Fe centers, while in situ EPR confirms the •SO 3 2 ⁻ radical‐mediated h + scavenging that accelerates charge separation and utilization. This work establishes Fe‐LMCT catalysis as a sustainable platform for gas‐phase pollutants remediation, achieving unprecedented selectivity through precise redox pathway control.
Article Details
Authors (7)
Ruimin Chen
Jielin Wang
Taobo Huang
Department of Environmental Science and Engineering Fudan University Shanghai P. R. China
Chunling Zhang
Xiuping Zhu
Department of Environmental Science and Engineering Fudan University Shanghai P. R. China
Jieyuan Li
Fan Dong
Institute of Fundamental and Frontier Sciences, School of Resources and Environment