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Interaction effects in magnetic oxide nanoparticle systems

机译:磁性氧化物纳米粒子系统中的相互作用效应

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The interaction effects in magnetic nanoparticle system were studied through a Monte Carlo simulation. The results of simulations were compared with two different magnetic systems, namely, iron oxide polymer nanocomposites prepared by polymerization over core and nanocrystalline cobalt ferrite thin films prepared by sol-gel process. The size of the particles in the nanocomposites were estimated to be ~15 nm with very little agglomeration. The low values of the coercivity obtained from the hysteresis measurements performed confirm that the system is superparamagnetic. SEM studies showed the cobalt ferrite films to have a nanocrystalline character, with particle sizes in the nanometer range. Hysteresis measurements performed on the thin films coated on silicon do not give evidence of the superparamagnetic transition up to room temperature and the coercivity is found to increase with decreasing film thickness. Comparison with simulations indicate that the nanocomposites behave like a strongly interacting array where exchange interactions lead to high blocking temperatures, whereas the films are representative of a semi-infinite array of magnetic clusters with weak interactions and thickness-dependent magnetic properties.
机译:通过蒙特卡洛模拟研究了磁性纳米粒子系统中的相互作用。将模拟结果与两种不同的磁性系统进行了比较,这两种磁性系统是通过在核上聚合制备的氧化铁聚合物纳米复合材料和通过溶胶-凝胶法制备的纳米晶钴铁氧体薄膜。纳米复合材料中的颗粒尺寸估计为〜15 nm,几乎没有团聚。从执行的磁滞测量值获得的低矫顽力值证实系统是超顺磁性的。 SEM研究表明,钴铁氧体薄膜具有纳米晶特征,粒径在纳米范围内。对涂在硅上的薄膜进行的磁滞测量没有给出直至室温的超顺磁性转变的证据,并且发现矫顽力会随着薄膜厚度的减小而增加。与模拟的比较表明,纳米复合材料的行为类似于强相互作用的阵列,其中交换相互作用导致较高的阻断温度,而薄膜则代表了具有弱相互作用和依赖于厚度的磁性性质的半无限阵列的磁簇。

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