论文标题
稳定性增强
Fractalized magnon transport on the quasicrystal with enhanced stability
论文作者
论文摘要
镁质已经在磁性和旋转三位型方面受到了极大的关注,因为它使用镁载的旋转电流,宏观序列磁介质的自旋波激发量子的前提。尽管由于缺乏焦耳加热,磁化物比常规电子产品具有明显的能量优势,但固有的镁麦克努尼相互作用会导致镁的有限寿命,这一直在阻碍镁质设备的有效实现。为了促进镁化学,必须确定受镁麦克尼族相互作用最小影响的DELACALIZED MAGNON模式,从而拥有较长的寿命,并使用它们来实现有效的木元传输。在这里,我们建议准晶体可以通过既不扩展也不局部的关键木核模式为此问题提供解决方案。我们发现,临界木蛋白在常规固体中表现出的分形特性,例如常规固体(例如独特的幂律缩放)和距离的自相似距离分布,显示出完美的木传变。此外,与周期系统中的扩展型相比,临界镁具有较长的寿命,通过抑制磁蛋白泥浆相互作用的衰减速率。这种增强木元的稳定性源于临界镁的准周期性和中间定位行为的存在。因此,我们提供了准晶体的实用性及其在镁中的关键自旋波函数,作为独特的分形传输特性和增强的稳定性。
Magnonics has been receiving significant attention in magnetism and spintronics because of its premise for devices using spin current carried by magnons, quanta of spin-wave excitations of a macroscopically ordered magnetic media. Although magnonics has clear energy-wise advantage over conventional electronics due to the absence of the Joule heating, the inherent magnon-magnon interactions give rise to finite lifetime of the magnons which has been hampering the efficient realizations of magnonic devices. To promote magnonics, it is imperative to identify the delocalized magnon modes that are minimally affected by magnon-magnon interactions and thus possess a long lifetime and use them to achieve efficient magnon transport. Here, we suggest that quasicrystals may offer the solution to this problem via the critical magnon modes that are neither extended nor localized. We find that the critical magnon exhibits fractal characteristics that are absent in conventional magnon modes in regular solids such as a unique power-law scaling and a self-similar distribution of distances showing perfect magnon transmission. Moreover, the critical magnons have longer lifetimes compared to the extended ones in a periodic system, by suppressing the magnon-magnon interaction decay rate. Such enhancement of the magnon stability originates from the presence of the quasi-periodicity and intermediate localization behavior of the critical magnons. Thus, we offer the utility of quasicrystals and their critical spin wave functions in magnonics as unique fractal transport characteristics and enhanced stability.