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耦合自旋-晶格系统中的磁相变:一种复制交换王-朗道研究。

Magnetic phase transition in coupled spin-lattice systems: A replica-exchange Wang-Landau study.

作者信息

Perera Dilina, Vogel Thomas, Landau David P

机构信息

Center for Simulational Physics, The University of Georgia, Georgia 30602, USA.

Department of Physics and Astronomy, Mississippi State University, Mississippi State, Mississippi 39762, USA.

出版信息

Phys Rev E. 2016 Oct;94(4-1):043308. doi: 10.1103/PhysRevE.94.043308. Epub 2016 Oct 17.

Abstract

Coupled, dynamical spin-lattice models provide a unique test ground for simulations investigating the finite-temperature magnetic properties of materials under the direct influence of the lattice vibrations. These models are constructed by combining a coordinate-dependent interatomic potential with a Heisenberg-like spin Hamiltonian, facilitating the treatment of both the atomic coordinates and the spins as explicit phase variables. Using a model parameterized for bcc iron, we study the magnetic phase transition in these complex systems via the recently introduced, massively parallel replica-exchange Wang-Landau Monte Carlo method. Comparison with the results obtained from rigid lattice (spin-only) simulations shows that the transition temperature as well as the amplitude of the peak in the specific heat curve is marginally affected by the lattice vibrations. Moreover, the results were found to be sensitive to the particular choice of interatomic potential.

摘要

耦合的动态自旋-晶格模型为研究晶格振动直接影响下材料的有限温度磁性质的模拟提供了一个独特的测试平台。这些模型是通过将坐标相关的原子间势与类似海森堡的自旋哈密顿量相结合构建的,便于将原子坐标和自旋都作为显式相变量来处理。使用为体心立方铁参数化的模型,我们通过最近引入的大规模并行副本交换王-兰道蒙特卡罗方法研究了这些复杂系统中的磁相变。与从刚性晶格(仅自旋)模拟获得的结果比较表明,转变温度以及比热曲线中峰值的幅度受到晶格振动的影响很小。此外,发现结果对原子间势的特定选择很敏感。

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