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Published on: June 23, 2023
Targeted cleavage of ether bond in BDE209 by microwave catalysis over S-doped iron-based materials without toxic
Yuxin Liu1, Qintie Lin2, Jinling Liu3
1College of Biological and Food Engineering, Guangdong University of Education, Guangzhou 510303, China; Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control, Guangdong Industrial Contaminated Site Remediation Technology and Equipment Engineering Research Center, School of Environmental Science and Engineering, Guangdong University of Technology, Guangzhou 510006, China.
Abstract:
Addressing the challenges of soil contamination by decabromodiphenyl ether (BDE209) and the limitations of conventional remediation techniques which often generate toxic byproducts, this study developed sulfur-doped iron-carbon composites (FCS-x) via a one-step pyrolysis method. The materials were evaluated for their efficiency and underlying mechanisms in the microwave-catalyzed degradation of BDE209. Characterization results confirmed that uniform sulfur doping induced a mesoporous structure and significantly improved the microwave absorption performance, achieving a maximum reflection loss of -16.7 dB. Under optimized conditions, an 83.3% degradation efficiency was achieved within 20 min without external oxidant. Based on combined experimental studies and density functional theory (DFT) calculations, O2•- was identified as the dominant active species, e- serves as the essential precursor for O2 activation. The "hot spot" effect and conductive carbon matrix facilitated electron transfer, promoting the activation of O2 to O2•-. GC-MS and LC-MS analyses, in conjunction with DFT results, revealed that microwave irradiation weakens the ether bond in BDE209. This process leads to selective cleavage without generating toxic low-brominated intermediates, thereby significantly mitigating environmental risks. This work illustrates the synergistic interaction between microwave thermal and non-thermal effects, and provides an efficient and eco-friendly strategy for the remediation of BDE209-contaminated soils.
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