Remarkably Enhancing H <sub>2</sub> O <sub>2</sub> Photogeneration by Modulating Pore‐Microenvironment of a Photoactive Covalent Organic Framework
Abstract
Abstract While research mainly focuses on enhancing photoelectric properties to improve photocatalytic efficiency, the influence of mass transfer has not yet been taken seriously. Herein, the pore microenvironment of an imidazole‐linked photoactive covalent organic framework (COF), PyNTB‐COF , is modulated by uniformly grafting sulfonates to study the influence of increasing the mass transfer capability on photocatalytic H 2 O 2 generation. Experimental studies reveal that the sulfonated PyNTB‐2SO 3 exhibits a remarkable H 2 O 2 production rate of 15158 µmol g −1 h −1 in the presence of a sacrificial agent, which is 20.6 times higher than that of the pristine COF. Further investigations reveal that its remarkable increase in photocatalytic efficiency of sulfonated PyNTB‐2SO 3 should be attributed to the enhanced mass transfer kinetics of reactants (e.g., ·O 2 − H 2 O, H + ) and products after modulating the pore microenvironment. Moreover, the introduced sulfonic acids can also simultaneously improve the intrinsic charge distribution of the framework and enhance the electron–hole separation and transfer capability. In outdoor water samples, the photocatalytic antimicrobial activity of PyNTB‐2SO 3 achieves >99% bacterial inactivation within 15 min, whereas the pristine PyNTB‐COF requires ≈6 h. This finding demonstrates that modulating the pore microenvironment to enhance mass transfer is a promising strategy for developing high‐performance photocatalysts for practical applications.
Article Details
Authors (12)
Tian‐Xiang Luan
School of Chemistry and Chemical Engineering Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion Science Center for Material Creation and Energy Conversion Shandong University Ji'nan Shandong 250100 P. R. China
Qilin Wei
School of Chemistry and Chemical Engineering Shandong Key Laboratory of Advanced Organosilicon Materials and Technologies Ministry of Education Key Laboratory of Special Functional Aggregated Materials Shandong University Jinan China
Chenglong Xin
Shandong Center for Disease Control and Prevention Shandong Academy of Preventive Medicine Ji'nan Shandong 250100 P. R. China
Siew Yee Wong
Yaohua Li
Department of Oral and Maxillofacial Surgery School and Hospital of Stomatology Shandong University & Shandong Key Laboratory of Oral Tissue Regeneration & Shandong Engineering Laboratory for Dental Materials and Oral Tissue Regeneration & Shandong Provincial Clinical Research Center for Oral Diseases Cheeloo College of Medicine Ji'nan Shandong 250100 P. R. China
Yunshao Zheng
Shandong Mental Health Center Shandong University Ji'nan Shandong 250100 P. R. China
Yan Li
Gangli Liu
Department of Oral and Maxillofacial Surgery School and Hospital of Stomatology Shandong University & Shandong Key Laboratory of Oral Tissue Regeneration & Shandong Engineering Laboratory for Dental Materials and Oral Tissue Regeneration & Shandong Provincial Clinical Research Center for Oral Diseases Cheeloo College of Medicine Ji'nan Shandong 250100 P. R. China
William W. Yu
School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion
Xian Jun Loh
Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology andResearch (A*STAR), 2 Fusionopolis Way, Innovis #08-03, Singapore 138634, Singapore
Xu Li
Pei‐Zhou Li
School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion Shandong University No. 27 Shanda South Road Ji'nan 250100 P.R. China