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首页> 外文期刊>Journal of Nanoparticle Research >Finite size and surface effects on the magnetic properties of cobalt ferrite nanoparticles
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Finite size and surface effects on the magnetic properties of cobalt ferrite nanoparticles

机译:有限尺寸和表面效应对钴铁氧体纳米粒子磁性能的影响

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Cobalt ferrite, CoFe2O4, nanoparticles in the size range 2–15 nm have been prepared using a non-aqueous solvothermal method. The magnetic studies indicate a superparamagnetic behavior, showing an increase in the blocking temperatures (ranging from 215 to more than 340 K) with the particle size, D TEM. Fitting M versus H isotherms to the saturation approach law, the anisotropy constant, K, and the saturation magnetization, M S, are obtained. For all the samples, it is observed that decreasing the temperature gives rise to an increase in both magnetic properties. These increases are enhanced at low temperatures (below ~160 K) and they are related to surface effects (disordered magnetic moments at the surface). The fit of the saturation magnetization to the T 2 law gives larger values of the Bloch constant than expected for the bulk, increasing with decreasing the particle size (larger specific surface area). The saturation magnetization shows a linear dependence with the reciprocal particle size, 1/D TEM, and a thickness of 3.7 to 5.1 Å was obtained for the non-magnetic or disordered layer at the surface using the dead layer theory. The hysteresis loops show a complex behavior at low temperatures (T ≤ 160 K), observing a large hysteresis at magnetic fields H > ~1000 Oe compared to smaller ones (H ≤ ~1000 Oe). From the temperature dependence of the ac magnetic susceptibility, it can be concluded that the nanoparticles are in magnetic interaction with large values of the interaction parameter T 0, as deduced by assuming a Vogel–Fulcher dependence of the superparamagnetic relaxation time. Another evidence of the presence of magnetic interactions is the almost nearly constant value below certain temperatures, lower than the blocking temperature T b, observed in the FC magnetization curves.
机译:采用非水溶剂热法制备了铁氧体CoFe 2 O 4 纳米粒子,粒径在2-15 nm。磁性研究表明,超顺磁行为表明,随着温度D TEM 的增加,阻断温度升高(从215 K升高到340 K以上)。将M与H等温线拟合到饱和逼近定律,得到各向异性常数K和饱和磁化强度M S 。对于所有样品,观察到降低温度会引起两种磁性的增加。这些增加在低温下(约160 K以下)会增强,并且与表面效应(表面的无序磁矩)有关。饱和磁化强度与T 2 法则的拟合给出的Bloch常数值比块体的预期值大,随颗粒尺寸的减小(比表面积增大)而增加。饱和磁化强度与粒径的倒数呈线性关系,为1 / D TEM ,使用死层在表面获得的非磁性或无序层厚度为3.7至5.1Å理论。磁滞回线在低温(T≤160 K)时表现出复杂的行为,与较小的磁场(H≤〜1000 Oe)相比,在H>〜1000 Oe的磁场下观察到较大的磁滞。从交流磁化率的温度依赖性,可以得出结论,假设超顺磁性的Vogel-Fulcher依赖性可以推论出,纳米颗粒与大的相互作用参数T 0 具有磁性相互作用。休息时间。磁相互作用存在的另一个证据是,在某些温度下,几乎低于FC磁化曲线中观察到的恒定值,低于阻断温度T b

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