Calcium‐Based Bifunctional Lewis Acid‐Base Sites Induce the Directional Generation of Radical in Catalytic Ozonation

G Gaoyan Shao (State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology No. 15, Bei San Huan Dong Road, Chaoyang Beijing 100029 China) F Feng Liu J Jiahua Qin (State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology No. 15, Bei San Huan Dong Road, Chaoyang Beijing 100029 China) C Chencan Du (Engineering Research Center of Preparation Technology of Ultra‐Pure Chemicals for Integrated Circuits Ministry of Education Beijing University of Chemical Technology No. 15, Bei San Huan Dong Road, Chaoyang Beijing 100029 China) Z ZhiYong Zhou Y Yinglei Wang (Xi'an Modern Chemistry Research Institute No. 168, Zhanba East Road, Yanta Xi'an Shaanxi 710065 China) Y Yuming Tu (Engineering Research Center of Preparation Technology of Ultra‐Pure Chemicals for Integrated Circuits Ministry of Education Beijing University of Chemical Technology No. 15, Bei San Huan Dong Road, Chaoyang Beijing 100029 China) Z Zhongqi Ren

Abstract

Abstract Reactive oxygen species (ROS) mediate critical redox processes in contaminant degradation, precise regulation of radical speciation remains fundamentally constrained by the heterogeneity in active site configurations and coordination microenvironments. Here, a site‐specific engineering strategy is demonstrated through spatially organized Ca─O basic sites and Ca─O─Si acidic centers, fabricated via Ca 2+ ‐mediated cross‐linking of sodium alginate. Mechanistic studies reveal that the alkaline Ca─O domains enhance spin density of *OO intermediates to promote hydroxyl radical (·OH) generation, while adjacent acidic Ca─O─Si moieties simultaneously lower *O formation energy barrier and suppress *OO conversion, establishing a selective radical generation pathway. This bifunctional design achieves near‐complete removal (>99.9%) of recalcitrant pollutants including oxalic acid and atrazine within 30 min, demonstrating 3‐230‐fold rate enhancement over conventional advanced oxidation processes (AOPs). The engineered catalyst maintains stable efficiency over 20 cycles in actual wastewater treatment processes, providing a molecular‐scale blueprint for directional ROS manipulation in water treatment.

Article Details

Volume / Issue Vol. 37, Issue 39
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

G

Gaoyan Shao

State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology No. 15, Bei San Huan Dong Road, Chaoyang Beijing 100029 China

F

Feng Liu

J

Jiahua Qin

State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology No. 15, Bei San Huan Dong Road, Chaoyang Beijing 100029 China

C

Chencan Du

Engineering Research Center of Preparation Technology of Ultra‐Pure Chemicals for Integrated Circuits Ministry of Education Beijing University of Chemical Technology No. 15, Bei San Huan Dong Road, Chaoyang Beijing 100029 China

Z

ZhiYong Zhou

Y

Yinglei Wang

Xi'an Modern Chemistry Research Institute No. 168, Zhanba East Road, Yanta Xi'an Shaanxi 710065 China

Y

Yuming Tu

Engineering Research Center of Preparation Technology of Ultra‐Pure Chemicals for Integrated Circuits Ministry of Education Beijing University of Chemical Technology No. 15, Bei San Huan Dong Road, Chaoyang Beijing 100029 China

Z

Zhongqi Ren