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Spin-spin correlations in ferromagnetic nanosystems

机译:铁磁纳米系统中的自旋-自旋相关性

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摘要

Using exact diagonalization, Monte-Carlo, and mean-field techniques, characteristic temperature scales for ferromagnetic order are discussed for the Ising and the classical anisotropic Heisenberg model on finite lattices in one and two dimensions. The interplay between nearest-neighbor exchange, anisotropy and the presence of surfaces leads, as a function of temperature, to a complex behavior of the distance-dependent spin-spin correlation function, which is very different from what is commonly expected. A finite experimental observation time is considered in addition, which is simulated within the Monte-Carlo approach by an incomplete statistical average. We find strong surface effects for small nanoparticles, which cannot be explained within a simple Landau or mean-field concept and which give rise to characteristic trends of the spin-correlation function in different temperature regimes. Unambiguous definitions of crossover temperatures for finite systems and an effective method to estimate the critical temperature of corresponding infinite systems are given.
机译:利用精确的对角化,蒙特卡洛和平均场技术,针对一维和二维有限空间上的Ising和经典各向异性Heisenberg模型,讨论了铁磁阶的特征温度标度。最近邻交换,各向异性和表面的存在之间的相互影响导致了温度的函数,即与距离相关的自旋-自旋相关函数的复杂行为,这与通常预期的完全不同。此外,还考虑了有限的实验观察时间,这是在蒙特卡洛方法中由不完整的统计平均值模拟的。我们发现小的纳米粒子具有很强的表面效果,这无法用简单的Landau或均值场概念来解释,并且会引起不同温度范围内自旋相关函数的特征趋势。给出了有限系统的交叉温度的明确定义以及估算相应无限系统的临界温度的有效方法。

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