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Impact of Molecular Structure on Superoxide Radical Generation in Biochar-Based D-A Heterojunction Photocatalysts for
Yaning Cui1, Linji Yang1, Tingyong Yi1
1Guangxi Key Laboratory of Nonferrous Metals and Special Materials Processing, Key Laboratory of New Technologies for Nonferrous Metals and Materials Processing, Ministry of Education, School of Chemistry and Chemical Engineering, State Key Laboratory of Featured Metal Materials and Life-Cycle Safety for Composite Structures, School of Resources, Environment and Materials, Guangxi University, Nanning 530004, China.
Abstract:
Chloramphenicol (CAP) has evolved from a widely used antibiotic to a persistent pollutant that is difficult to manage. We employed photocatalysis to address the pollution that it caused. Given the similarity in requirements for active layer materials between photocatalysis and solar cells, we selected outstanding materials already employed in bulk heterojunction organic solar cells (BHJ-OSCs) to construct the catalyst. We selected PTQ10, which is low-cost and readily synthesized, as the donor and ITIC-Th and IEICO-4F, which can broaden the absorption range, as the acceptors, thereby constituting two distinct D-A heterojunction active layers. We immobilized them onto coconut shell charcoal (CSC) obtained from agricultural byproduct recycling, yielding two catalysts: PTQ10:ITIC-Th/CSC and PTQ10:IEICO-4F/CSC. They were able to degrade 97% of high-concentration CAP within 15 min under visible light irradiation and remained stable for over 20 cycles. We further investigated the influence of molecular structure on photocatalytic processes as follows: 1) ITIC-Th exhibits a larger dipole moment and more favorable band structure, resulting in enhanced charge separation efficiency; 2) ITIC-Th possesses reduced steric hindrance, exposing more active reaction sites; and 3) ITIC-Th demonstrates a broader light absorption range with more complete absorption of visible light. The above three points enable PTQ10:ITIC-Th/CSC to generate more •O2- and degrade CAP more efficiently. This work is expected to provide some ideas and help with environmental pollution control and photocatalyst design.
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