论文标题
朝着超薄电影中的室温纳米级天空
Toward room-temperature nanoscale skyrmions in ultrathin films
论文作者
论文摘要
打破小尺寸和室温稳定性之间的困境是基于天空的信息技术的必要先决条件。在这里,我们通过速率理论和一种原子自旋汉密尔顿(Hamiltonian)证明了超薄铁磁膜中孤立的天际效果的稳定性可以通过磁相互作用的一致变化来增强,同时保持天空尺寸不变。我们预测薄膜系统,在环境条件下,低于10 nm的天空寿命可以达到数年。如此小的天空的寿命很长,这是由于较大的arrhenius预定指数和能量屏障的稳定作用在室温下是微不足道的。由于天空的镁质模式的软化,实现了指数前的急剧增加,从而增加了Skyrmion的熵相对于过渡状态以进行塌陷。增加天空变形模式的数量应该是实现纳米级,室温稳定天空的指导原则。
Breaking the dilemma between small size and room temperature stability is a necessary prerequisite for skyrmion-based information technology. Here we demonstrate by means of rate theory and an atomistic spin Hamiltonian that the stability of isolated skyrmions in ultrathin ferromagnetic films can be enhanced by the concerted variation of magnetic interactions while keeping the skyrmion size unchanged. We predict film systems where the lifetime of sub-10 nm skyrmions can reach years at ambient conditions. The long lifetime of such small skyrmions is due to exceptionally large Arrhenius pre-exponential and the stabilizing effect of the energy barrier is insignificant at room temperature. A dramatic increase in the pre-exponential is achieved thanks to softening of magnon modes of the skyrmion, thereby increasing the entropy of the skyrmion with respect to the transition state for collapse. Increasing the number of skyrmion deformation modes should be a guiding principle for the realization of nanoscale, room-temperature stable skyrmions.