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Tin oxide-titania based electronic system: synthesis, structural, microstructural and dielectric properties

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
SnO2-TiO2, a composite ceramic electronic element was produced by employing a cost-effective and reliable method known as the solid-state synthesis process. The phase, microstructure, chemical composition, and electrical characteristics across a wide frequency range of 1 kHz-1 MHz were evaluated in detail to comprehend this electronic candidate as a capacitive component. The XRD study revealed a polycrystalline tetragonal structure with a crystallite size of 57.9 nm. The SEM micrograph revealed uniformly distributed grains and the calculated average grain size is 0.199 μm. A hydrophilic porous nature was also ascertained from the SEM micrograph. A high dielectric constant (2623) with low dielectric loss (7.5) resulted at the 1 kHz frequency and 400°C. The enhanced capacitive nature was determined by impedance spectroscopy under an extensive frequency and temperature range. The mechanism and nature of conduction at various temperatures were ascertained from the conductivity analysis. The electric modulus characteristics substantiate the non-Debye relaxation of this composite. Based on the comprehensive results, the synthesized component can have prospective applications as a capacitive component for humidity sensors and other electronic devices.
Rocznik
Strony
183--190
Opis fizyczny
Bibliogr. 43 poz., rys.
Twórcy
autor
  • Faculty of Engineering and Technology (ITER), Siksha ‘O’ Anusandhan (Deemed to be University), Bhubaneswar 751030, India
autor
  • Faculty of Engineering and Technology (ITER), Siksha ‘O’ Anusandhan (Deemed to be University), Bhubaneswar 751030, India
autor
  • Faculty of Engineering and Technology (ITER), Siksha ‘O’ Anusandhan (Deemed to be University), Bhubaneswar 751030, India
Bibliografia
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  • 20. Chenaina H., Messaadi C., Jalali J., Ezzaouia H., Study of structural, optical and electrical properties of SnO2 doped TiO2 thin films prepared by a facile sol-gel route, Inorganic Chemistry Communications 2021, 124, 108401, DOI: 10.1016/j.inoche.2020.108401.
  • 21. Kim H.K., Sathaye S.D., Hwang Y.K., Jhung S.H., Hwang J.S., Kwon S.H., Park S.E., Chang J.S., Humidity sensing properties of nanoporous TiO2-SnO2 ceramic sensors, Bulletin of the Korean Chemical Society 2005, 26(11), 1881-1884, DOI: 10.5012/bkcs.2005.26.11.1881.
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  • 23. Kumar V., Chauhan V., Ram J., Gupta R., Kumar S., Chaudhary P., Yadav B.C., Ojha S., Sulania I., Kumar R., Study of humidity sensing properties and ion beam induced modifications in SnO2-TiO2 nanocomposite thin films, Surface and Coatings Technology 2020, 392, 125768, DOI: 10.1016/j.surfcoat.2020.125768.
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  • 27. Messaadi C., Ghrib T., Jalali J., Ghrib M., Alyami A.A., Gaidi M., Silvan M.M., Ezzaouia H., Synthesis and characterization of SnO2-TiO2 nanocomposites photocatalysts, Current Nanoscience 2019, 15(4), 398-406, DOI: 10.2174/ 1573413714666180927110912.
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  • 30. Das S.N., Pradhan S.K., Kar D.P., Bhuyan S., Choudhary R.N.P., Excitation performance of fabricated PMN-BFO relaxor through electric field, Journal of Materials Science: Materials in Electronics 2018, 29, 9375-9379, DOI: 10.1007/s10854-018-8969-4.
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  • 32. Das S.N., Pradhan S., et al., Modification of relaxor and impedance spectroscopy properties of lead magnesium niobate by bismuth ferrite, Journal of Electronic Materials 2017, 46, 1637-1649, DOI: 10.1007/s11664-016-5207-9.
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  • 36. Patnaik D., Nayak P.P., Bhuyan S., Das S.N., Structural, microstructural, and electrical behavior of a relaxor (Mg0.5W0.5)(Pb0.5Ni0.5)O3 electronic material, Journal of the Australian Ceramic Society 2023, DOI: 10.1007/s41779-023-00914-7.
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  • 38. Pradhan S.K., Das S.N., Halder S., Bhuyan S., Choudhary R.N., Dielectric dispersion and impedance spectroscopy of yttrium doped BiFeO3-PbTiO3 electronic system, Journal of Materials Science: Materials in Electronics 2017, 28, 9627-9633, DOI: 10.1007/s10854-017-6712-1.
  • 39. Pradhan S.K., Das S.N., Bhuyan S., Behera C., Padhee R., Choudhary R.N., Structural, dielectric and impedance characteristics of lanthanum-modified BiFeO3–PbTiO3 electronic system, Applied Physics A 2016, 122, 1-9, DOI: 10.1007/s00339-016-0043-6.
  • 40. Dhaou M.H., Hcini S., Mallah A., Bouazizi M.L., Jemni A., Structural and complex impedance spectroscopic studies of Ni0.5Mg0.3Cu0.2Fe2O4 ferrite nanoparticle, Applied Physics A 2017, 123, 1-9, DOI: 10.1007/s00339-016-0652-0.
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  • 42. Das S.N., Pradhan S.K., Bhuyan S., Choudhary R.N., Capacitive, resistive and conducting characteristics of bismuth ferrite and lead magnesium niobate based relaxor electronic system, Journal of Materials Science: Materials in Electronics 2017, 28, 18913-18928, DOI: 10.1007/s10854-017-7845-y.
  • 43. Patnaik D., Nayak P.P., Bhuyan S., Das S.N., Temperature and frequency dependent dielectric and electrical properties of relaxor (Ca1/2W1/2)(Pb1/2Ni1/2)O3 electronic material, Results in Chemistry 2023, 5, 100991, DOI: 10.1016/j.rechem.2023.100991.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-9cc4ae30-86a5-430e-a54a-aa214b8eadfc
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