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Low-temperature properties of ferromagnetic Fibonacci superlattices

机译:铁磁斐波那契超晶格的低温性质

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摘要

Theoretical analysis of the layered quasi-periodic Fibonacci structures (superlattices-sequence) is presented for the systems consisting of n(A) and n(B) ferromagnetically ordered planes within the layers with S-a and S-b spins, respectively, while the interfaces are coupled with bilinear and/or biquadratic exchange interaction, within the framework of localized spin model in the low-temperature limit. Transfer matrix method and direct diagonalization after the bosonization in Bloch's approximation resulted both in the same analytical expression for the magnon-excitation energy. The equivalence (at low-temperatures) of the transfer matrix (spin) and boson approach was discussed, as well as the role of the interlayer biquadratic coupling between different blocks constituting the Fibonacci sequences. Also, our approach allows the determination of the internal energy and calculation of the magnon contribution to the specific heat. It was clearly demonstrated that the magnon specific heat vanishes for T -> 0. Our results are compared with the results of other authors.
机译:给出了层间准周期性斐波纳契结构(超晶格序列)的理论分析,该系统由具有Sa和Sb自旋的层中的n(A)和n(B)铁磁有序平面组成,并且界面耦合在低温极限的局部自旋模型的框架内具有双线性和/或双二次交换相互作用。转移矩阵法和在布洛赫近似中的玻色化后的直接对角化都产生了相同的磁振子激发能解析表达式。讨论了传递矩阵(自旋)和玻色子方法的等效性(在低温下),以及构成斐波那契序列的不同嵌段之间的层间双二次耦合的作用。此外,我们的方法还可以确定内部能量并计算磁振子对比热的贡献。清楚地表明,当T-> 0时,磁振子比热消失。我们的结果与其他作者的结果进行了比较。

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