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Enhancement of Magnetic and Dielectric Properties of Ni0.25Cu0.25Zn0.50Fe2O4 Magnetic Nanoparticles through Non-Thermal Microwave Plasma Treatment for High-Frequency and Energy Storage Applications.
Munir, Muhammad Adnan; Naz, Muhammad Yasin; Shukrullah, Shazia; Ansar, Muhammad Tamoor; Farooq, Muhammad Umar; Irfan, Muhammad; Mursal, Salim Nasar Faraj; Legutko, Stanislaw; Petru, Jana; Pagác, Marek.
Affiliation
  • Munir MA; Department of Physics, University of Agriculture Faisalabad, Faisalabad 38040, Pakistan.
  • Naz MY; Department of Physics, University of Agriculture Faisalabad, Faisalabad 38040, Pakistan.
  • Shukrullah S; Department of Physics, University of Agriculture Faisalabad, Faisalabad 38040, Pakistan.
  • Ansar MT; Centre of Excellence in Solid State Physics, University of the Punjab, Lahore 54590, Pakistan.
  • Farooq MU; State Key Laboratory of Chemical Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China.
  • Irfan M; Electrical Engineering Department, College of Engineering, Najran University, Najran 61441, Saudi Arabia.
  • Mursal SNF; Electrical Engineering Department, College of Engineering, Najran University, Najran 61441, Saudi Arabia.
  • Legutko S; Faculty of Mechanical Engineering, Poznan University of Technology, 60-965 Poznan, Poland.
  • Petru J; Department of Machining, Assembly and Engineering Metrology, Mechanical Engineering Faculty, VSB-Technical University of Ostrava, 17, Listopadu 2172/15, 70800 Ostrava, Czech Republic.
  • Pagác M; FME, Department of Machining, Assembly and Engineering Metrology, VSB Technical University of Ostrava, 17. listopadu 2172/15, 70800 Ostrava, Czech Republic.
Materials (Basel) ; 15(19)2022 Oct 04.
Article in En | MEDLINE | ID: mdl-36234231
Spinel ferrites are widely investigated for their widespread applications in high-frequency and energy storage devices. This work focuses on enhancing the magnetic and dielectric properties of Ni0.25Cu0.25Zn0.50 ferrite series through non-thermal microwave plasma exposure under low-pressure conditions. A series of Ni0.25Cu0.25Zn0.50 ferrites was produced using a facile sol-gel auto-ignition approach. The post-synthesis plasma treatment was given in a low-pressure chamber by sustaining oxygen plasma with a microwave source. The structural formation of control and plasma-modified ferrites was investigated through X-ray diffraction analysis, which confirmed the formation of the fcc cubical structure of all samples. The plasma treatment did not affect crystallize size but significantly altered the surface porosity. The surface porosity increased after plasma treatment and average crystallite size was measured as about ~49.13 nm. Morphological studies confirmed changes in surface morphology and reduction in particle size on plasma exposure. The saturation magnetization of plasma-exposed ferrites was roughly 65% higher than the control. The saturation magnetization, remnant magnetization, and coercivity of plasma-exposed ferrites were calculated as 74.46 emu/g, 26.35 emu/g, and 1040 Oe, respectively. Dielectric characteristics revealed a better response of plasma-exposed ferrites to electromagnetic waves than control. These findings suggest that the plasma-exposed ferrites are good candidates for constructing high-frequency devices.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Materials (Basel) Year: 2022 Document type: Article Affiliation country: Pakistan Country of publication: Switzerland

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Materials (Basel) Year: 2022 Document type: Article Affiliation country: Pakistan Country of publication: Switzerland