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Sol-gel as a method to tailor the magnetic properties of Co1+yAl2-yO4
Author(s) -
Dušan Milivojević,
B. Babić-Stojić,
Vukoman Jokanović,
Zvonko Jagličić,
Dušan Branković,
N. Jović,
Božana Čolović,
Svetlana Čupić,
Dušan Kojić
Publication year - 2013
Publication title -
science of sintering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.309
H-Index - 25
eISSN - 1820-7413
pISSN - 0350-820X
DOI - 10.2298/sos1301069m
Subject(s) - spinel , materials science , analytical chemistry (journal) , grain size , amorphous solid , paramagnetism , phase (matter) , nanoparticle , particle size , chemical engineering , mineralogy , nanotechnology , crystallography , metallurgy , chemistry , chromatography , condensed matter physics , physics , organic chemistry , engineering
The magnetic properties of mesoscopic materials are modified by size and surface effects. We present a sol-gel method used to tailor these effects, and illustrate it on Co1+yAl2-yO4 spinel. Nanocomposites made of spinel oxide Co1+yAl2-yO4 particles dispersed in an amorphous SiO2 matrix were synthesized. Samples with various mass fractions -x of Co1+yAl2-yO4 in composite, ranging from predominantly SiO2 (x = 10 wt%) to predominantly spinel (x = 95 wt%), and with various Co concentrations in spinel y were studied. The spinel grain sizes were below 100 nm with a large size distribution, for samples with predominant spinel phase. Those samples showed Curie-Weiss paramagnetic behavior with antiferromagnetically interacting Co ions (θ ≈ -100 K). The grain sizes of spinel stays confined in 100 nm range even in the spinel samples diluted with as low as 5 wt% concentration of amorphous SiO2. For the samples with predominant SiO2 the crystalline nanoparticles are well separated and of size of around 100 nm, but with presence of much smaller spinel nanoparticles of about 10 nm. The magnetic properties of the samples with predominant silica phase showed complex behavior, spin-glass magnetic freezing at the lowest temperatures and lower absolute value of θ and consequently lower exchange constant. [Projekat Ministarstva nauke Republike Srbije, br. 172026

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