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Screening of Mono-, Di- and Trivalent Cationic Dopants for the Enhancement of Thermal Behavior, Kinetics, Structural, Morphological, Surface and Magnetic Properties of CoFe2O4-SiO2 Nanocomposites
被引:1
|作者:
Dippong, Thomas
[1
]
Levei, Erika Andrea
[2
]
Petean, Ioan
[3
]
Deac, Iosif Grigore
[4
]
Mereu, Raluca Anca
[3
]
Cadar, Oana
[2
]
机构:
[1] Tech Univ Cluj Napoca, Fac Sci, 76 Victoriei St, Baia Mare 430122, Romania
[2] INCDO INOE 2000, Res Inst Analyt Instrumentat, 67 Donath St, Cluj Napoca 400293, Romania
[3] Babes Bolyai Univ, Fac Chem & Chem Engn, 11 Arany Janos St, Cluj Napoca 400084, Romania
[4] Babes Bolyai Univ, Fac Phys, 1 Kogalniceanu St, Cluj Napoca 400084, Romania
关键词:
cobalt ferrite;
silica matrix;
doping;
calcination;
magnetic behavior;
COBALT FERRITE NANOPARTICLES;
SOL-GEL SYNTHESIS;
ELECTRICAL-PROPERTIES;
THIN-FILMS;
LA;
AG;
CU;
D O I:
10.3390/ijms24119703
中图分类号:
Q5 [生物化学];
Q7 [分子生物学];
学科分类号:
071010 ;
081704 ;
摘要:
CoFe2O4 is a promising functional material for various applications. The impact of doping with different cations (Ag+, Na+, Ca2+, Cd2+, and La3+) on the structural, thermal, kinetics, morphological, surface, and magnetic properties of CoFe2O4 nanoparticles synthesized via the sol-gel method and calcined at 400, 700 and 1000 degrees C is investigated. The thermal behavior of reactants during the synthesis process reveals the formation of metallic succinates up to 200 degrees C and their decomposition into metal oxides that further react and form the ferrites. The rate constant of succinates' decomposition into ferrites calculated using the isotherms at 150, 200, 250, and 300 degrees C decrease with increasing temperature and depend on the doping cation. By calcination at low temperatures, single-phase ferrites with low crystallinity were observed, while at 1000 degrees C, the well-crystallized ferrites were accompanied by crystalline phases of the silica matrix (cristobalite and quartz). The atomic force microscopy images reveal spherical ferrite particles covered by an amorphous phase, the particle size, powder surface area, and coating thickness contingent on the doping ion and calcination temperature. The structural parameters estimated via X-ray diffraction (crystallite size, relative crystallinity, lattice parameter, unit cell volume, hopping length, density) and the magnetic parameters (saturation magnetization, remanent magnetization, magnetic moment per formula unit, coercivity, and anisotropy constant) depend on the doping ion and calcination temperature.
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