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Temperature dependence of the effective anisotropies in magnetic nanoparticles with Neel surface anisotropy

机译:磁性纳米粒子中有效各向异性的温度依赖性与Neel表面各向异性

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We discuss the physical concept of the effective anisotropy in magnetic nanoparticles with surface anisotropy. A recently developed constrained Monte Carlo method allows evaluation of the temperature dependence of the energy surface in the whole temperature range, from which the effective anisotropy is determined. We consider nanoparticles of different shapes with cubic or uniaxial core anisotropy and Neel surface anisotropy. We demonstrate that at low temperatures surface effects can be dominant, leading to an overall cubic effective anisotropy even in spherical nanoparticles with uniaxial core anisotropy. This cubic anisotropy contribution decreases more rapidly with increasing temperature than the uniaxial core anisotropy, leading to a temperature-induced reorientation transition. We discuss the scaling behaviour of the effective anisotropy with magnetization in nanoparticles with surface anisotropy contribution. The scaling exponent deviates from that expected from Callen-Callen theory due to increased fluctuations of the surface spins.
机译:我们讨论磁性纳米粒子的有效各向异性的物理概念,具有表面各向异性。最近开发的受限蒙特卡罗方法允许评估能量表面在整个温度范围内的温度依赖性,从而确定有效各向异性。我们认为不同形状的纳米颗粒,具有立方或单轴核心各向异性和Neel表面各向异性。我们证明,在低温下,表面效应可以是显着的,即使在具有单轴核心各向异性的球形纳米颗粒中的整体立方有效各向异性。这种立方体各向异性贡献随比单轴核心各向异性的温度越来越快地减少,导致温度诱导的重新定位过渡。我们讨论了具有表面各向异性贡献的纳米颗粒中磁化的有效各向异性的缩放行为。由于表面旋转的波动增加,缩放指数偏离了愈伤组织 - 呼叫理论的预期。

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