Oxalic Acid-Assisted Photo-Fenton Catalysis Using Magnetic Fe3O4 Nanoparticles for Complete Removal of Textile Dye

Author:

Bhavsar Sunil1ORCID,Dudhagara Pravin1,Ghelani Anjana2,Wirajana I Nengah3,Phi Quyet-Tien4ORCID,Chen Yih-Yuan5,Shyu Douglas J. H.6ORCID

Affiliation:

1. Department of Biosciences, Veer Narmad South Gujarat University, Surat 395007, Gujarat, India

2. Shree Ramkrishna Institute of Computer Education and Applied Sciences, Sarvajanik University, Surat 395001, Gujarat, India

3. Department of Chemistry, Faculty of Mathematics and Natural Science, Udayana University, Badung 80361, Indonesia

4. Institute of Biotechnology, Vietnam Academy of Science and Technology, Hanoi 100000, Vietnam

5. Department of Biochemical Science and Technology, National Chiayi University, Chiayi City 600, Taiwan

6. Department of Biological Science and Technology, National Pingtung University of Science and Technology, Pingtung 912301, Taiwan

Abstract

Textile industry effluents contain several hazardous substances, such as dye-containing effluents, which pose environmental and aesthetic challenges. Presently, the microbial-based remediation process is in use. This study investigated the application of ferrous–ferric oxide (Fe3O4) nanoparticles, a readily formulated nanoadsorbent, to remove scattered dye molecules from industrial effluents. The ferrous–ferric oxide nanoparticles were prepared using a chemical co-precipitation method. The nanoparticles had 26.93 emu g−1 magnetization, with sizes smaller than 20 nm, and possessed a highly purified cubic spinel crystallite structure. The catalytic activity of the iron oxide depended on the dose, photocatalytic enhancer, i.e., H2O2 level, pH of the reaction medium, and dye concentration. We optimized the Fenton-like reaction to work best using 1.0 g/L of ferrous–ferric oxide nanoparticles, 60 mM oxalic acid at pH 7.0, and 60 ppm of dye. Iron oxides act as photocatalysts, and oxalic acid generates electron–hole pairs. Consequently, higher amounts of super-radicals cause the rapid degradation of dye and pseudo-first-order reactions. Liquid chromatography–mass spectrometry (LC-MS) analysis revealed the ferrous–ferric oxide nanoparticles decolorized and destroyed Disperse Red 277 in 180 min under visible light. Hence, complete demineralization is observed using a photo-Fenton-like reaction within 3 h under visible light. These high-capacity, easy-to-separate next-generation adsorption systems are suggested to be suitable for industrial-scale use. Ferrous–ferric oxide nanoparticles with increased adsorption and magnetic properties could be utilized to clean environmental pollution.

Funder

University Grant Commission (UGC), Govt. of India, New Delhi

Publisher

MDPI AG

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