DocumentCode :
51996
Title :
Electrical and Magnetotransport Properties of {\\rm La}_{{0.7}}{\\rm Ca}_{{0.3}}{\\rm Mn}_{{1-x}}{\\rm Co}_{{x}}{\\rm O}_{3}
Author :
Tran Dang Thanh ; Phan, T.L. ; Phung Quoc Thanh ; Hoang Nam Nhat ; Duong Anh Tuan ; Yu, S.C.
Author_Institution :
Dept. of Phys., Chungbuk Nat. Univ., Cheongju, South Korea
Volume :
50
Issue :
6
fYear :
2014
fDate :
Jun-14
Firstpage :
1
Lastpage :
4
Abstract :
This paper presents a detailed study on the Co-doping influence on the electrical and magnetotransport properties of La0.7Ca0.3Mn1-xCoxO3(x = 0.09-0.17) prepared by solid-state reaction. Magnetic measurements versus temperature revealed gradual decrease of the magnetization (M) and Curie temperature (TC) with increasing Co concentration (x). The TC values vary from 194 to 159 K as changing x from 0.09 to 0.17, respectively. H/M versus M2 performances around TC prove the x = 0.09 sample undergoing a first-order magnetic phase transition (FOMT) while the samples with x ≥ 0.11 undergo a second-order magnetic phase transition (SOMT). The other with x = 0.10 is considered as a threshold concentration of the FOMT-SOMT transformation. Considering temperature dependences of resistivity, ρ(T), in the presence and absence of the magnetic field, the samples (excepting x = 0.17) exhibit a metal-insulator transition at TP = 60-160 K, which shifts toward lower temperatures with increasing x. the metallic-ferromagnetic region, the ρ(T) data are well fitted to a power function ρ(T) = ρ0 + ρ2 T2 + ρ4.5 T4.5. This indicates electron-electron and electron-magnon scattering processes are dominant at temperatures T <; TP. In addition, the conduction data at temperatures T > θD/2 (θD is the Debye temperature) and TP <; T <; θD/2 obey the small-polaron and variable-range hopping models, respectively. The values of activation energy Ep, and density of states at the Fermi level N(EF) were accordingly determined. Here, N(EF) increases while Ep decreases when an external magnetic field is applied. We also have found that N(EF) - ncreases when materials transfer from the FOMT to the SOMT, and N(EF) value becomes smallest for the sample having the coexistence of the FOMT and SOMT (i.e., x = 0.10).
Keywords :
Curie temperature; Debye temperature; Fermi level; calcium compounds; doping; electrical resistivity; ferromagnetic materials; galvanomagnetic effects; hopping conduction; lanthanum compounds; magnetisation; magnons; metal-insulator transition; small polaron conduction; Co-doping; Curie temperature; Debye temperature; Fermi level; La0.7Ca0.3Mn1-xCoxO3; activation energy; conduction data; density of states; electrical properties; electrical resistivity; electron-electron scattering processes; electron-magnon scattering processes; first-order magnetic phase transition; magnetic field; magnetic measurements; magnetization; magnetotransport properties; metal-insulator transition; metallic-ferromagnetic region; power function; second-order magnetic phase transition; small-polaron hopping models; solid-state reaction; temperature dependence; variable-range hopping models; Compounds; Conductivity; Magnetic properties; Materials; Scattering; Temperature distribution; Magnetic and electrical properties; magnetic phase transition; perovskite manganites;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2014.2301713
Filename :
6832861
Link To Document :
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