Cobalt and holmium co-doped nickel ferrite nanoparticles: synthesis, characterization and photocatalytic application studies

Author:

Shafiq Kashuf1,Aadil Muhammad1,Hassan Warda2,Choudhry Qurshia3,Gul Safia4,Rais Afroz4,Fattah Alaa A.5,Mahmoud Khaled H.5,Ansari Mohd Zahid6

Affiliation:

1. Department of Chemistry, Rahim Yar Khan Campus , The Islamia University of Bahawalpur , Rahim Yar Khan , 64200 , Pakistan

2. Department of Chemistry , The Women University Multan , Multan , 60000 , Pakistan

3. Department of Chemistry, School of Materials Science and Engineering , University of Jinan , Jinan , 250022 , P.R. China

4. Department of Botany , Sardar Bahadur Khan Women’s University , Quetta , Pakistan

5. Department of Physics , College of Khurma University College , T aif University , P.O. Box 11099 , Taif 21944 , Saudi Arabia .

6. School of Materials Science and Engineering , Yeungnam University , 280 Daehak-Ro , Gyeongsan , Gyeongbuk 38541 , Republic of Korea

Abstract

Abstract Herein, nickel ferrite-based photocatalysts with enhanced light utilizing electrical charge transport properties have been reported for environmental remediation applications. The cobalt and holmium co-doped nickel ferrite [Ni1−x (Co) x Fe2−y (Ho) y O4] nanoparticles and bare nickel ferrite (NiFe2O4) nanoparticles have been prepared via surfactant-supported wet-chemical techniques. The as-prepared ferritic photocatalyst’s structural, morphological, and light harvesting features have been examined in detail using well-known physical, electronic, and optical methods. The co-doped ferrite photocatalyst’s tuned structural features enable it to absorb maximum wavelengths from the U.V. and visible regions. This is because the co-doped Ni1−x (Co) x Fe2−y (Ho) y O4 optical band gap is 1.73 eV; hence, the wavelength from the visible part possesses sufficient energies to trigger the electronic excitation in co-doped ferrite photocatalysts. Moreover, the co-doping-induced structural defects in the ferrite photocatalyst. These defects act as a reservoir for the charge species, mainly electrons, so the process of charge recombination is almost hampered for the Ni1−x (Co) x Fe2−y (Ho) y O4 photocatalyst. In application terms, the photomineralization capabilities of doped and bare ferrite photocatalysts have been explored using crystal violet (CV) dye. The comparative photocatalytic evaluation of both nickel ferrite-based photocatalysts shows that co-doped ferrite degraded 96.02 % of CV dye. In comparison, the undoped one only degraded 64.84 % after 80 min of W-lamp light exposure. The results demonstrated that the Ho and Co co-doped ferrite photocatalyst exhibits excellent photocatalytic activity, suggesting its potential for environmental remediation applications in textile industrial discharges.

Funder

Taif University

Islamia University of Bahawalpur

Publisher

Walter de Gruyter GmbH

Subject

Physical and Theoretical Chemistry

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