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Technological Aspects of Lithium-Titanium Ferrite Synthesis by Electron-Beam Heating

Solid-phase synthesis of lithium-titanium ferrite by electron-beam heating of a Fe(2)O(3)–Li(2)CO(3)–TiO(2) initial reagents mixture with different history (powder, compact, mechanically activated mixture) was studied using X-ray diffraction, thermomagnetometric and specific saturation magnetization...

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Autores principales: Lysenko, Elena, Vlasov, Vitaly, Nikolaev, Evgeniy, Surzhikov, Anatoliy, Ghyngazov, Sergei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9866523/
https://www.ncbi.nlm.nih.gov/pubmed/36676339
http://dx.doi.org/10.3390/ma16020604
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author Lysenko, Elena
Vlasov, Vitaly
Nikolaev, Evgeniy
Surzhikov, Anatoliy
Ghyngazov, Sergei
author_facet Lysenko, Elena
Vlasov, Vitaly
Nikolaev, Evgeniy
Surzhikov, Anatoliy
Ghyngazov, Sergei
author_sort Lysenko, Elena
collection PubMed
description Solid-phase synthesis of lithium-titanium ferrite by electron-beam heating of a Fe(2)O(3)–Li(2)CO(3)–TiO(2) initial reagents mixture with different history (powder, compact, mechanically activated mixture) was studied using X-ray diffraction, thermomagnetometric and specific saturation magnetization analyses. Ferrite was synthesized using an ILU-6 pulsed electron accelerator; it generated electrons with electron energy of 2.4 MeV to heat samples to temperatures of 600 and 750 °C. The isothermal holding time upon reaching the synthesis temperature was 0–120 min. The efficiency of ferrite synthesis by electron-beam heating was evaluated via comparison of the characteristics of the obtained samples with those synthesized by conventional ceramic technology under similar temperature-time conditions. It was found that the rate of ferrite formation depends on the heating method, temperature, synthesis time, density, and activity of the initial mixture. It was shown that sample compaction provides the preferential formation of unsubstituted lithium ferrite of Li(0.5)Fe(2.5)O(4) composition with a Curie temperature of at ca. 630 °C in both synthesis methods. High-energy electron-beam heating of the mechanically activated mixture significantly accelerates synthesis of Li(0.6)Fe(2.2)Ti(0.2)O(4) substituted ferrite, for which the Curie temperature and specific saturation magnetization were recorded as 534 °C and 50 emu/g, respectively. Therefore, LiTi ferrites can be obtained at a lower temperature (750 °C) and with a shorter synthesis time (120 min) compared to traditional ceramic technology.
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spelling pubmed-98665232023-01-22 Technological Aspects of Lithium-Titanium Ferrite Synthesis by Electron-Beam Heating Lysenko, Elena Vlasov, Vitaly Nikolaev, Evgeniy Surzhikov, Anatoliy Ghyngazov, Sergei Materials (Basel) Article Solid-phase synthesis of lithium-titanium ferrite by electron-beam heating of a Fe(2)O(3)–Li(2)CO(3)–TiO(2) initial reagents mixture with different history (powder, compact, mechanically activated mixture) was studied using X-ray diffraction, thermomagnetometric and specific saturation magnetization analyses. Ferrite was synthesized using an ILU-6 pulsed electron accelerator; it generated electrons with electron energy of 2.4 MeV to heat samples to temperatures of 600 and 750 °C. The isothermal holding time upon reaching the synthesis temperature was 0–120 min. The efficiency of ferrite synthesis by electron-beam heating was evaluated via comparison of the characteristics of the obtained samples with those synthesized by conventional ceramic technology under similar temperature-time conditions. It was found that the rate of ferrite formation depends on the heating method, temperature, synthesis time, density, and activity of the initial mixture. It was shown that sample compaction provides the preferential formation of unsubstituted lithium ferrite of Li(0.5)Fe(2.5)O(4) composition with a Curie temperature of at ca. 630 °C in both synthesis methods. High-energy electron-beam heating of the mechanically activated mixture significantly accelerates synthesis of Li(0.6)Fe(2.2)Ti(0.2)O(4) substituted ferrite, for which the Curie temperature and specific saturation magnetization were recorded as 534 °C and 50 emu/g, respectively. Therefore, LiTi ferrites can be obtained at a lower temperature (750 °C) and with a shorter synthesis time (120 min) compared to traditional ceramic technology. MDPI 2023-01-08 /pmc/articles/PMC9866523/ /pubmed/36676339 http://dx.doi.org/10.3390/ma16020604 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lysenko, Elena
Vlasov, Vitaly
Nikolaev, Evgeniy
Surzhikov, Anatoliy
Ghyngazov, Sergei
Technological Aspects of Lithium-Titanium Ferrite Synthesis by Electron-Beam Heating
title Technological Aspects of Lithium-Titanium Ferrite Synthesis by Electron-Beam Heating
title_full Technological Aspects of Lithium-Titanium Ferrite Synthesis by Electron-Beam Heating
title_fullStr Technological Aspects of Lithium-Titanium Ferrite Synthesis by Electron-Beam Heating
title_full_unstemmed Technological Aspects of Lithium-Titanium Ferrite Synthesis by Electron-Beam Heating
title_short Technological Aspects of Lithium-Titanium Ferrite Synthesis by Electron-Beam Heating
title_sort technological aspects of lithium-titanium ferrite synthesis by electron-beam heating
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9866523/
https://www.ncbi.nlm.nih.gov/pubmed/36676339
http://dx.doi.org/10.3390/ma16020604
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