论文标题
部分可观测时空混沌系统的无模型预测
Modeling coupled spin and lattice dynamics
论文作者
论文摘要
提出了一个分子和原子自旋动力学的统一模型,在微型典型和规范的集合中都可以模拟,而无需其他现象学自旋阻尼。基于自旋轨道相互作用,通过晶格和自旋系统之间的能量和角动量转移是通过耦合项实现的。分析了自旋和声子系统的特征光谱,以确保不同的耦合强度和温度。自旋光谱密度与耦合与晶格诱导的不相关噪声一起显示了镁质模式。研究了有效阻尼参数,显示耦合强度和温度都会增加。该模型为理解磁性松弛过程的方式铺平了道路,超出了吉尔伯特阻尼的现象学方法以及晶格和旋转之间的能量传递的动力学。
A unified model of molecular and atomistic spin dynamics is presented enabling simulations both in microcanonical and canonical ensembles without the necessity of additional phenomenological spin damping. Transfer of energy and angular momentum between the lattice and the spin systems is achieved by a coupling term based upon the spin-orbit interaction. The characteristic spectra of the spin and phonon systems are analyzed for different coupling strength and temperatures. The spin spectral density shows magnon modes together with the uncorrelated noise induced by the coupling to the lattice. The effective damping parameter is investigated showing an increase with both coupling strength and temperature. The model paves the way to understanding magnetic relaxation processes beyond the phenomenological approach of the Gilbert damping and the dynamics of the energy transfer between lattice and spins.