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◆ Environmental research2026-08-31

Boron-doped biochar with dual C-B-O/O-B-O sites as a super-anchor and electron-accelerator for nZVI-activated persulfate oxidation of imidacloprid.

Zhengming Yang, Zhuochao Wang, Taiwen Li, Yang Xu, Tianyu Xu, Han Ding, Chuangshi Zhang, Yuzhuang Chen, Qiang Li, Rui Fang, Hongliang Cao

原始摘要(英文原文)· Original abstract
Removing imidacloprid from water by persulfate oxidation remains challenging because the iron-based activators commonly used in these systems are prone to aggregation, passivation, and loss of reactivity. Among available advanced oxidation processes, nZVI-activated peroxydisulfate (PDS) is attractive for IMI degradation, but its performance is often compromised by inefficient oxidant utilization and poor catalyst durability. Herein, boron-doped biochar (BBC) with atomically dispersed functional sites was engineered to enhance nZVI catalytic performance. C-B-O sites served as robust anchoring sites, exhibiting a calculated Fe-binding energy of 391.98 kJ/mol and contributing to nZVI stabilization and improved activity retention after air exposure. Concurrently, O-B-O sites created polar microenvironments that promoted PDS enrichment and accelerated interfacial electron transfer, yielding an electron efficiency of 0.62 e- per PDS molecule. This dual-site architecture promoted the generation of O2·-, 1O2, SO4·-, and ·OH, as evidenced by radical-scavenging and electron paramagnetic resonance measurements. PBQ quenching caused the most pronounced suppression of IMI removal, indicating an important role of O2·-, whereas the characteristic TEMP-1O2 signal confirmed the involvement of a 1O2-associated non-radical pathway. DFT calculations further showed that the selected reaction pathways of O2·-, 1O2, SO4·-, and ·OH toward IMI exhibited different intrinsic energy barriers. Collectively, these results support the important involvement of O2·--mediated oxidation and 1O2-associated non-radical processes in IMI transformation under the investigated conditions. The catalyst achieved 91% IMI removal within 160 min and retained >96% of its initial activity after 30 days of air exposure. These findings provide a practical interfacial regulation strategy for designing carbon-supported iron catalysts with improved stability and enhanced PDS activation performance for persulfate-based water purification.
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Boron-doped biochar with dual C-B-O/O-B-O sites as a super-anchor and electron-accelerator for nZVI-activated persulfate oxidation of imidacloprid. — 科研速览 Science Skim