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Published on: October 6, 2022
Dual-Functional Fe-Doped TiO2 Photocatalyst for Visible-Light-Driven 2,4‑D Remediation in Contaminated Soil and Plant
Wanlayaphon Chansane1, Kittiya Luangwiangkam1, Apichart Boonmalai1
1Chemistry Program, Department of Science, Faculty of Science and Technology, Nakhon Sawan Rajabhat University, Nakhonsawan 60000, Thailand.
None:
While photocatalytic remediation is promising, its ecological compatibility and impact on post-treatment soil productivity remain critically under-explored. This study addresses this gap by developing a dual-functional Fe-doped TiO2 photocatalyst via microwave-assisted synthesis for the remediation of contaminated agricultural soil. The 0.5 wt % Fe-doped TiO2 exhibited enhanced visible-light absorption and suppressed charge recombination, achieving 88% 2,4-dichlorophenoxyacetic acid (2,4-D) degradation and 56% total organic carbon (TOC) removal at pH 4.2 within 90 min. Radical scavenging experiments identified hydroxyl radical (•OH) as the primary reactive species driving the degradation, while hole (h+) and superoxide radical (•O2 -) played secondary roles in the reaction mechanism. Crucially, the comprehensive ecological safety assessment using Chinese cabbage (Brassica rapa) revealed a vital safety threshold for practical application. The optimal 0.5 wt % Fe-doped TiO2 not only eliminated herbicide toxicity but also actively enhanced plant growth compared to the control, acting as a beneficial dual-agent. In contrast, toxicity and growth inhibition were observed at higher Fe doping concentrations (>1.0 wt % Fe) due to iron toxicity, highlighting the necessity of precise dopant optimization. By integrating herbicide mineralization with soil vitalization, this work provides a sustainable strategy for restoring herbicide-contaminated lands while ensuring agricultural productivity.
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