Magnetic relaxation and correlating effective magnetic moment with particle size distribution in maghemite nanoparticles
arXiv:1501.06842 · doi:10.1016/j.jmmm.2015.02.038
Abstract
The role of particle size distribution inherently present in magnetic nanoparticles (NPs) is examined in considerable detail in relation to the measured magnetic properties of oleic acid-coated maghemite (γ-FeO) NPs. Transmission electron microscopy (TEM) of the sol-gel synthesized - NPs showed a log-normal distribution of sizes with average diameter = 7.04 nm and standard deviation = 0.78 nm. Magnetization, , vs. temperature (2 K to 350 K) of the NPs was measured in an applied magnetic field up to 90 kOe along with the temperature dependence of the ac susceptibilities, and , at various frequencies, , from 10 Hz to 10 kHz. From the shift of the blocking temperature from =35 K at 10 Hz to = 48 K at 10 kHz, the absence of any significant interparticle interaction is inferred and the relaxation frequency = 2.6 x 10 Hz and anisotropy constant = 5.48 x 10 ergs/cm are determined. For < , the coercivity is practically negligible. For > , the data of vs. up to 90 kOe at several temperatures are analyzed two different ways: (i) in terms of the modified Langevin function yielding an average magnetic moment per particle =7300 (500) ; and (ii) in terms of log-normal distribution of moments yielding = 6670 at 150 K decreasing to = 6100 at 300 K with standard deviations . The above two approaches yield consistent and physically meaningful results as long as the width parameter, , of the log-normal distribution is less than 0.83.
Submitted to the Journal of Magnetism and Magnetic Materials
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Cited by in corpus (6)
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