Rapid degradation of sulfur-containing pollutants in water using potassium oximate through nucleophilic transformation with kinetic, mechanistic and antimicrobial evaluation

Abstract Sulfur-containing organic pollutants persist in industrial wastewater, particularly in petroleum refining effluents, where their chemical stability limits conventional treatment. Here, we report a rapid and efficient degradation strategy based on potassium 2,3-butanedione mono-oximate (KBDO), using 2-Chloroethyl ethyl sulfide (CEES) as a representative thioether model. Under mild aqueous conditions (room temperature, atmospheric pressure, aqueous medium, and pH 10), KBDO enables fast and selective transformation of CEES, achieving up to 97% removal in real petroleum wastewater. Kinetic analysis reveals pseudo-first-order behavior with a high-rate constant (k = 0.495 min⁻¹) and a short half-life (1.4 min), indicating exceptionally rapid reaction dynamics. Product analysis by GC–MS identifies multiple transformation products consistent with an oximate-driven nucleophilic substitution pathway followed by fragmentation and cyclization. Notably, the system also exhibits antimicrobial activity across a range of microbial strains, demonstrating dual functionality. Unlike conventional oxidation-based treatments, this approach operates without catalysts or external energy input, offering a simple and environmentally benign alternative. These findings establish KBDO as a promising platform for fast, scalable, and multifunctional remediation of sulfur-containing pollutants in complex water systems.

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Publication Details

Journal
Scientific Reports
Published
2026-09-17
DOI
https://doi.org/10.1038/s41598-026-69296-7
Primary Topic
Chemical Synthesis and Reactions
Type
article
Field-Weighted Citation Impact
0.00

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article

Rapid degradation of sulfur-containing pollutants in water using potassium oximate through nucleophilic transformation with kinetic, mechanistic and antimicrobial evaluation

Mohamed Atef Abdel Fatah, Ghada E. Hegazy, Hussein Oraby, Ahmed Saeed Abo Elfath
Scientific Reports
Chemical Synthesis and Reactions
article

Rapid degradation of sulfur-containing pollutants in water using potassium oximate through nucleophilic transformation with kinetic, mechanistic and antimicrobial evaluation

Mohamed Atef Abdel Fatah, Ghada E. Hegazy, Hussein Oraby, Ahmed Saeed Abo Elfath
article en

Abstract

Abstract Sulfur-containing organic pollutants persist in industrial wastewater, particularly in petroleum refining effluents, where their chemical stability limits conventional treatment. Here, we report a rapid and efficient degradation strategy based on potassium 2,3-butanedione mono-oximate (KBDO), using 2-Chloroethyl ethyl sulfide (CEES) as a representative thioether model. Under mild aqueous conditions (room temperature, atmospheric pressure, aqueous medium, and pH 10), KBDO enables fast and selective transformation of CEES, achieving up to 97% removal in real petroleum wastewater. Kinetic analysis reveals pseudo-first-order behavior with a high-rate constant (k = 0.495 min⁻¹) and a short half-life (1.4 min), indicating exceptionally rapid reaction dynamics. Product analysis by GC–MS identifies multiple transformation products consistent with an oximate-driven nucleophilic substitution pathway followed by fragmentation and cyclization. Notably, the system also exhibits antimicrobial activity across a range of microbial strains, demonstrating dual functionality. Unlike conventional oxidation-based treatments, this approach operates without catalysts or external energy input, offering a simple and environmentally benign alternative. These findings establish KBDO as a promising platform for fast, scalable, and multifunctional remediation of sulfur-containing pollutants in complex water systems.

Scientific ReportsVol. 16(1)
Cairo University (EG), Al-Azhar University (EG), National Institute of Oceanography and Fisheries (EG), Military Technical College (EG)
Science and Technology Development Fund
Clean water and sanitation
Openalex Percentile: Top 21%
Chemical Synthesis and Reactions
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