A Universal Fenton-Like Strategy for Selective Generation of 1O2 in Mixed Industrial Wastewater Treatment and Green Chemical Synthesis.
Journal:
Angewandte Chemie (International ed. in English)
Published Date:
Aug 8, 2026
Abstract
Sustained and selective generation of singlet oxygen (1O2) in Fenton-like catalytic systems is highly desirable for diverse applications, from freshwater resource management to green chemical synthesis. Despite advances in advanced oxidation processes, there remains a lack of generalizable methods that reliably modulate 1O2 selectivity. Here, we propose a descriptor-assisted coordination modulation strategy, in which machine-learning analysis identifies the d-band center as an important electronic descriptor associated with 1O2 selectivity. Through N-coordination modulation, the CoN5 catalyst exhibited near-complete 1O2 selectivity among the quantified reactive oxygen species (ROS) with a steady-state concentration of 394 µM, outperforming recent reports. As an internal-circulation pre-oxidation module, the CoN5/peroxymonosulfate (CoN5/PMS) system continuously raised wastewater biochemical oxygen demand/chemical oxygen demand (BOD/COD) to above 0.5 over 192 h, increased bioavailable dissolved organic matter (DOM), and showed high microbiome compatibility, evidenced by reduced Vibrio fischeri inhibition and microbial diversity ordination clustering near the background with greater shared-taxa overlap. This system also enabled selective thioanisole oxidation, achieving 90.6% conversion and 99.5% selectivity, with green synthesis potential demonstrated in a three-chamber continuous single-pass reactor. These results establish a generalizable coordination principle for steering ROS pathways and provide a deployable, low-ecological-risk route for both mixed wastewater treatment and green chemical synthesis.
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