<p>In this study a novel heterogeneous Fenton-like catalyst, copper phosphate material Cu<sub>3</sub>(PO<sub>4</sub>)<sub>2</sub> with good stability over a wide pH range, was synthetized by sol gel method and characterized by several physicochemical techniques in the aim to eliminate Basic Yellow 28 (BY-28) an organic dye from water. The physicochemical analysis results of the catalyst revealed a high porosity with large specific surface area. Thus contributing to generate <sup>⋅</sup>OH radicals via the activation of hydrogen peroxide (H<sub>2</sub>O<sub>2</sub>). However, several reaction parameters affecting the catalyst performance such as H<sub>2</sub>O<sub>2</sub> concentration, Cu<sub>3</sub>(PO<sub>4</sub>)<sub>2</sub> dose, initial pH, temperature and BY-28 concentration were investigated. The best dye degradation rates were achieved at the neutral <i>pH</i> with BY-28 dye concentration of 20&#xa0;mg L<sup>−1</sup>. The synthesized copper phosphate was successfully reused five times while retaining a removal efficiency of 97% after 50&#xa0;min. Moreover, other dyes could be found in textile industry wastewater were also eliminated in the optimum condition. These results make the copper phosphate, a prominent catalyst for the organic dye degradation using the Fenton-like process.</p>

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Degradation of basic yellow 28 via Fenton-like oxidation using a copper phosphate-based catalyst

  • D. Meziani,
  • Y. Roumila,
  • I. Belkhettab,
  • M. Trari

摘要

In this study a novel heterogeneous Fenton-like catalyst, copper phosphate material Cu3(PO4)2 with good stability over a wide pH range, was synthetized by sol gel method and characterized by several physicochemical techniques in the aim to eliminate Basic Yellow 28 (BY-28) an organic dye from water. The physicochemical analysis results of the catalyst revealed a high porosity with large specific surface area. Thus contributing to generate OH radicals via the activation of hydrogen peroxide (H2O2). However, several reaction parameters affecting the catalyst performance such as H2O2 concentration, Cu3(PO4)2 dose, initial pH, temperature and BY-28 concentration were investigated. The best dye degradation rates were achieved at the neutral pH with BY-28 dye concentration of 20 mg L−1. The synthesized copper phosphate was successfully reused five times while retaining a removal efficiency of 97% after 50 min. Moreover, other dyes could be found in textile industry wastewater were also eliminated in the optimum condition. These results make the copper phosphate, a prominent catalyst for the organic dye degradation using the Fenton-like process.