The effect of the magnetically dead layer on the magnetization and the magnetic anisotropy of the dextran coated magnetite nanoparticles
arXiv:2303.14654 · doi:10.1007/s00339-022-05675-x
Abstract
We present a study on the magnetic behavior of dextran-coated magnetite nanoparticles (DM NPs) with sizes between 3 and 19 nm, synthesized by hydrothermal-assisted co-precipitation method. The decrease of saturation magnetization () with decreasing particle size has been modeled by assuming the existence of a spin-disordered layer at the particle surface, which is magnetically dead. Based on this core-shell model and taking into account the weight contribution of the non-magnetic coating layer (dextran) to the whole magnetization, the dead layer thickness () and saturation magnetization of the magnetic cores in our samples were estimated to be and , respectively. The data of were analyzed using a law of approach to saturation, indicating an increase in effective magnetic anisotropy () with decreasing particle size as expected from the increased surface/volume ratio in small MNPs. The obtained values were successfully modeled by including an extra contribution of dipolar interactions due to the formation of chain-like clusters of MNPs. The surface magnetic anisotropy () was estimated to be about . Our method provides a simple and accurate way to obtain the core values in surface-disordered MNPs, a relevant parameter required for magnetic modeling in many applications.
16 pages, 1 table, 3 figures