Study of Dielectric and Magnetic properties for ZnFe 2 O 4 Nanoparticles Synthesized usinghigh current Exploding Technique

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Year : April 1, 2024 at 5:20 pm | [if 1553 equals=””] Volume : [else] Volume :[/if 1553] | [if 424 equals=”Regular Issue”]Issue[/if 424][if 424 equals=”Special Issue”]Special Issue[/if 424] [if 424 equals=”Conference”][/if 424] : | Page : –

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    Surendra Singh, Shailendra Kumar, Anil Maheshwari, Gunaram, Vijay Sharma, Piyush Gupta, Gaurav Sharma*

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  1. Assistant Professor, Professor, Assistant Professor, Assistant Professor, Assistant Professor, Professor, Associate Professor, Department of Electronics and Communication,, Department of Mechanical Engineering, Department of Mathematics, Department of Physics, Department of Physics, Department of Mechanical Engineering,, Department of Applied Physics, Uttar Pradesh, Uttar Pradesh, Uttar Pradesh, Rajasthan, Rajasthan, Uttar Pradesh, Uttar Pradesh, India, India, India, India, India, India, India
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Abstract

nThe current article uses the exploding wire technique to examine the magnetic, electrical, and dielectric properties of nanoscale zinc copper ferrite (ZnFe2O4). The SEM micrographs confirm the almost uniform size distribution of the nanoparticles. The Mossbauer spectrum of the nanoparticles was recorded with an externally applied magnetic field at room temperature. The ferromagnetic behavior of the ZFO sample was determined through VSM measurements at ambient temperature, and the M-H loop analysis yielded information on the magnitude of remanence, coercivity, and optimum magnetization. Our findings indicate that the ZFO sample is ideal for applications requiring switching magnetic properties between ferromagnetic and paramagnetic states. The dielectric properties, including the frequency-dependent dielectric parameters, were determined using an LCR meter, and the dielectric relaxation phenomenon was found to be governed by a technique similar to Arrhenius. Additionally, we plan to investigate the magnetodielectric response (MDR) of the ZnFe2O4 nanoparticles under different external magnetic field strengths at specified frequencies and temperatures. Overall, the facile and economical nano ferrite produced through a high-output synthesis technique is highly appealing for electronic devices requiring fine-tuning magnetodielectric features.

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Keywords: Nanoparticles; ferrites; Mossbauer; electric; magnetic.

n[if 424 equals=”Regular Issue”][This article belongs to Journal of Polymer and Composites(jopc)]

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[/if 424][if 424 equals=”Special Issue”][This article belongs to Special Issue under section in Journal of Polymer and Composites(jopc)][/if 424][if 424 equals=”Conference”]This article belongs to Conference [/if 424]

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How to cite this article: Surendra Singh, Shailendra Kumar, Anil Maheshwari, Gunaram, Vijay Sharma, Piyush Gupta, Gaurav Sharma* Study of Dielectric and Magnetic properties for ZnFe 2 O 4 Nanoparticles Synthesized usinghigh current Exploding Technique jopc ; :-

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How to cite this URL: Surendra Singh, Shailendra Kumar, Anil Maheshwari, Gunaram, Vijay Sharma, Piyush Gupta, Gaurav Sharma* Study of Dielectric and Magnetic properties for ZnFe 2 O 4 Nanoparticles Synthesized usinghigh current Exploding Technique jopc {cited };:-. Available from: https://journals.stmjournals.com/jopc/article=/view=0

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References

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  1. Goswami, S. Singh and S. C. Katyal, J. Laser Opt. Photonics, 4, 158 (2017).
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  5. Singh, A. Sahai, S. C. Katyal and N. Goswami, Materials Science-Poland, 36:4, 722-732 (2018).
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[if 424 not_equal=””][else]Ahead of Print[/if 424] Open Access Original Research

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Journal of Polymer and Composites

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[if 344 not_equal=””]ISSN: 2321–2810[/if 344]

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Volume
[if 424 equals=”Regular Issue”]Issue[/if 424][if 424 equals=”Special Issue”]Special Issue[/if 424] [if 424 equals=”Conference”][/if 424]
Received December 30, 2023
Accepted February 3, 2024
Published April 1, 2024 at 5:20 pm

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