CATALYTIC EFFECT OF METAL IONS ON THE OXIDATION OF THIOCYANATE IONS WITH HYDROGEN PEROXIDE

Thiocyanate (SCN⁻) ions, formed during the cyanidation of gold ores, pose a significant environmental problem when present in mine processing wastewater. In this study, the oxidation of potassium thiocyanate model solutions (10–1000 mg/L) with hydrogen peroxide, in the presence and absence of Cu2+ and Fe2+ ions, was investigated at room temperature. Residual SCN⁻ concentrations were determined by bromatometric titration and UV-spectroscopy. Without a catalyst, H2O2 showed the weakest effect at all concentrations, leaving 6–17% residual SCN⁻ even at the highest applied dose. The addition of Cu2+ and Fe2+ ions markedly accelerated oxidation via Fenton and Fenton-like mechanisms, achieving 95–100% removal efficiency at doses above 500 µL, with Fe2+ generally showing slightly higher catalytic activity than Cu2+. The catalytic effect became more pronounced as the initial concentration decreased: at 10 mg/L, complete (100%) degradation of thiocyanate was achieved in the presence of Fe2+. These findings recommend Fe2+- and Cu2+-catalyzed H2O2-based processes as a promising technological solution for the effective detoxification of thiocyanate-containing wastewater from gold processing plants.

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Journal
CHEMISTRY AND CHEMICAL ENGINEERING
Published
2026-09-29
DOI
https://doi.org/10.70189/1992-9498.1747
Primary Topic
Cassava research and cyanide
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article
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article

CATALYTIC EFFECT OF METAL IONS ON THE OXIDATION OF THIOCYANATE IONS WITH HYDROGEN PEROXIDE

Salmon Mukhammadiev, Berdakh Daniyarov, Sarvar B. RAJABOV, Haci DEVECI et al.
CHEMISTRY AND CHEMICAL ENGINEERING
Cassava research and cyanide
article

CATALYTIC EFFECT OF METAL IONS ON THE OXIDATION OF THIOCYANATE IONS WITH HYDROGEN PEROXIDE

Salmon Mukhammadiev, Berdakh Daniyarov, Sarvar B. RAJABOV, Haci DEVECI, Shahlo Sh. DAMINOVA
article en

Abstract

Thiocyanate (SCN⁻) ions, formed during the cyanidation of gold ores, pose a significant environmental problem when present in mine processing wastewater. In this study, the oxidation of potassium thiocyanate model solutions (10–1000 mg/L) with hydrogen peroxide, in the presence and absence of Cu2+ and Fe2+ ions, was investigated at room temperature. Residual SCN⁻ concentrations were determined by bromatometric titration and UV-spectroscopy. Without a catalyst, H2O2 showed the weakest effect at all concentrations, leaving 6–17% residual SCN⁻ even at the highest applied dose. The addition of Cu2+ and Fe2+ ions markedly accelerated oxidation via Fenton and Fenton-like mechanisms, achieving 95–100% removal efficiency at doses above 500 µL, with Fe2+ generally showing slightly higher catalytic activity than Cu2+. The catalytic effect became more pronounced as the initial concentration decreased: at 10 mg/L, complete (100%) degradation of thiocyanate was achieved in the presence of Fe2+. These findings recommend Fe2+- and Cu2+-catalyzed H2O2-based processes as a promising technological solution for the effective detoxification of thiocyanate-containing wastewater from gold processing plants.

CHEMISTRY AND CHEMICAL ENGINEERINGVol. 2026(3)
Karadeniz Technical University (TR), National University of Uzbekistan (UZ)
Clean water and sanitation
Openalex Percentile: Top 14%
Cassava research and cyanide
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CATALYTIC EFFECT OF METAL IONS ON THE OXIDATION OF THIOCYANATE IONS WITH HYDROGEN PEROXIDE — Salmon Mukhammadiev, Berdakh Daniyarov, et al. · CHEMISTRY AND CHEMICAL ENGINEERING (2026) | TGRS Research Map | TGRS