Magnetoresistance of LSMO/(Cu2O, Ag) composites

Electrical, structural and magnetoresistive properties of ceramic composites with different mass ratios of components were synthesized and studied: (Cu2O+CuO)x/(La0,7Sr0,3MnO3)1-x (x = 0,17; 0,22; 0,33; 0,43; 0,48; 0,53; 0,58; 0,63; 0,68; 0,72; 0,77; 0,82; 0,86; 0,91; 0,99), and Agy/(La0,7Sr0,3MnO3)...

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Main Authors: A.A. Utoplov, N.V. Prutsakova, A.G. Rudskaya, A.V. Nazarenko, M.V. Belokobylsky, Yu.V. Kabirov
Format: Article
Language:Russian
Published: Tver State University 2024-12-01
Series:Физико-химические аспекты изучения кластеров, наноструктур и наноматериалов
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Online Access:https://physchemaspects.ru/2024/doi-10-26456-pcascnn-2024-16-307/?lang=en
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author A.A. Utoplov
N.V. Prutsakova
A.G. Rudskaya
A.V. Nazarenko
M.V. Belokobylsky
Yu.V. Kabirov
author_facet A.A. Utoplov
N.V. Prutsakova
A.G. Rudskaya
A.V. Nazarenko
M.V. Belokobylsky
Yu.V. Kabirov
author_sort A.A. Utoplov
collection DOAJ
description Electrical, structural and magnetoresistive properties of ceramic composites with different mass ratios of components were synthesized and studied: (Cu2O+CuO)x/(La0,7Sr0,3MnO3)1-x (x = 0,17; 0,22; 0,33; 0,43; 0,48; 0,53; 0,58; 0,63; 0,68; 0,72; 0,77; 0,82; 0,86; 0,91; 0,99), and Agy/(La0,7Sr0,3MnO3)1-y (y = 0; 0,02; 0,06; 0,08; 0,10; 0,12; 0,25; 0,50). The composites with copper oxides were synthesized using an original technology for sample preparation using dispersed copper and a pre-prepared ferromagnetic oxide with the perovskite structure La0,7Sr0,3MnO3. Pressed mixtures with a copper content of less than 45% by weight were annealed at a temperature of 1050°C. At higher copper contents, annealing was performed at 1000°C. The compositions with silver nanoparticles were prepared by reduction from silver nitrate. The composites were synthesized using an original technology for sample preparation using dispersed copper and La0,7Sr0,3MnO3 manganite with annealing at 1000-1050°C. It was shown that the synthesized composites with a mass ratio of components (Cu2O+CuO)0,43/(La0,7Sr0,3MnO3)0,57 exhibit the highest magnetoresistance values of about 7% in a constant magnetic field of 14 kOe at room temperature. The maximum magnetoresistance correlates with a special region of change in the dependence of electrical resistance on the component ratio in these compositions. In the Ag0,08/(LSMO)0,92 composition, the magnetoresistance values reach 5,5%.
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2658-4360
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publishDate 2024-12-01
publisher Tver State University
record_format Article
series Физико-химические аспекты изучения кластеров, наноструктур и наноматериалов
spelling doaj-art-3157d4c49db84b349bfd80681b6b17152025-08-20T02:35:36ZrusTver State UniversityФизико-химические аспекты изучения кластеров, наноструктур и наноматериалов2226-44422658-43602024-12-011630731710.26456/pcascnn/2024.16.307Magnetoresistance of LSMO/(Cu2O, Ag) compositesA.A. Utoplov0N.V. Prutsakova1A.G. Rudskaya2A.V. Nazarenko3M.V. Belokobylsky4Yu.V. Kabirov5Southern Federal UniversityDon State Technical UniversitySouthern Federal UniversityFederal Research Centre Southern Scientific Centre of the Russian Academy of SciencesSouthern Federal UniversitySouthern Federal UniversityElectrical, structural and magnetoresistive properties of ceramic composites with different mass ratios of components were synthesized and studied: (Cu2O+CuO)x/(La0,7Sr0,3MnO3)1-x (x = 0,17; 0,22; 0,33; 0,43; 0,48; 0,53; 0,58; 0,63; 0,68; 0,72; 0,77; 0,82; 0,86; 0,91; 0,99), and Agy/(La0,7Sr0,3MnO3)1-y (y = 0; 0,02; 0,06; 0,08; 0,10; 0,12; 0,25; 0,50). The composites with copper oxides were synthesized using an original technology for sample preparation using dispersed copper and a pre-prepared ferromagnetic oxide with the perovskite structure La0,7Sr0,3MnO3. Pressed mixtures with a copper content of less than 45% by weight were annealed at a temperature of 1050°C. At higher copper contents, annealing was performed at 1000°C. The compositions with silver nanoparticles were prepared by reduction from silver nitrate. The composites were synthesized using an original technology for sample preparation using dispersed copper and La0,7Sr0,3MnO3 manganite with annealing at 1000-1050°C. It was shown that the synthesized composites with a mass ratio of components (Cu2O+CuO)0,43/(La0,7Sr0,3MnO3)0,57 exhibit the highest magnetoresistance values of about 7% in a constant magnetic field of 14 kOe at room temperature. The maximum magnetoresistance correlates with a special region of change in the dependence of electrical resistance on the component ratio in these compositions. In the Ag0,08/(LSMO)0,92 composition, the magnetoresistance values reach 5,5%. https://physchemaspects.ru/2024/doi-10-26456-pcascnn-2024-16-307/?lang=enceramic compositesmagnetoresistancelanthanum-strontium manganitecopper oxidessilver nanoparticlespercolation
spellingShingle A.A. Utoplov
N.V. Prutsakova
A.G. Rudskaya
A.V. Nazarenko
M.V. Belokobylsky
Yu.V. Kabirov
Magnetoresistance of LSMO/(Cu2O, Ag) composites
Физико-химические аспекты изучения кластеров, наноструктур и наноматериалов
ceramic composites
magnetoresistance
lanthanum-strontium manganite
copper oxides
silver nanoparticles
percolation
title Magnetoresistance of LSMO/(Cu2O, Ag) composites
title_full Magnetoresistance of LSMO/(Cu2O, Ag) composites
title_fullStr Magnetoresistance of LSMO/(Cu2O, Ag) composites
title_full_unstemmed Magnetoresistance of LSMO/(Cu2O, Ag) composites
title_short Magnetoresistance of LSMO/(Cu2O, Ag) composites
title_sort magnetoresistance of lsmo cu2o ag composites
topic ceramic composites
magnetoresistance
lanthanum-strontium manganite
copper oxides
silver nanoparticles
percolation
url https://physchemaspects.ru/2024/doi-10-26456-pcascnn-2024-16-307/?lang=en
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AT nvprutsakova magnetoresistanceoflsmocu2oagcomposites
AT agrudskaya magnetoresistanceoflsmocu2oagcomposites
AT avnazarenko magnetoresistanceoflsmocu2oagcomposites
AT mvbelokobylsky magnetoresistanceoflsmocu2oagcomposites
AT yuvkabirov magnetoresistanceoflsmocu2oagcomposites