论文标题

突破2D范德华磁铁中的Mermin-Wagner极限

Breaking through the Mermin-Wagner limit in 2D van der Waals magnets

论文作者

Jenkins, Sarah, Rozsa, Levente, Atxitia, Unai, Evans, Richard F. L., Novoselov, Kostya S., Santos, Elton J. G.

论文摘要

Mermin-Wagner定理指出,在具有短程相互作用的一维(2D)各向同性磁体中,远程磁性不存在。该定理一直是磁性的里程碑,一直在推动最近发现的2D Van der Waals(VDW)磁性材料的研究,从基本面到潜在的应用。在这样的系统中,磁有序的存在通常归因于存在明显的磁各向异性的存在,该磁各向异性已知会引入自旋波间隙并规避定理的核心假设。在这里,我们表明,在有限大小的2D VDW磁铁中,通常在实验室设置(例如,在毫米内)中发现的短距离相互作用可以足够大,以允许在有限温度下稳定磁性,而无需任何磁各向异性以实现实际实现。我们证明,由于旋转交换相互作用的固有性质和二维效应的固有性质,可以在2D材料的薄片中产生磁有序。令人惊讶的是,我们发现,跨界温度从超paragnetic变为完全无序的顺磁性状态,较弱地取决于系统的长度,需要巨大尺寸(例如,可观察到的宇宙的顺序〜10 $^{26} $ M),以使其对磁性的磁性持续良好的速度构成,以观察到磁性的磁性机器人。我们的发现表明,交换相互作用是在2D磁性中稳定短距离顺序的主要驱动力,并拓宽了探索在原子上较薄水平下具有低各向异性化合物的可能性的范围。

The Mermin-Wagner theorem states that long-range magnetic order does not exist in one- or two-dimensional (2D) isotropic magnets with short-ranged interactions. The theorem has been a milestone in magnetism and has been driving the research of recently discovered 2D van der Waals (vdW) magnetic materials from fundamentals up to potential applications. In such systems, the existence of magnetic ordering is typically attributed to the presence of a significant magnetic anisotropy, which is known to introduce a spin-wave gap and circumvent the core assumption of the theorem. Here we show that in finite-size 2D vdW magnets typically found in lab setups (e.g., within millimetres), short-range interactions can be large enough to allow the stabilisation of magnetic order at finite temperatures without any magnetic anisotropy for practical implementations. We demonstrate that magnetic ordering can be created in flakes of 2D materials independent of the lattice symmetry due to the intrinsic nature of the spin exchange interactions and finite-size effects in two-dimensions. Surprisingly we find that the crossover temperature, where the intrinsic magnetisation changes from superparamagnetic to a completely disordered paramagnetic regime, is weakly dependent on the system length, requiring giant sizes (e.g., of the order of the observable universe ~10$^{26}$ m) in order to observe the vanishing of the magnetic order at cryogenic temperatures as expected from the Mermin-Wagner theorem. Our findings indicate exchange interactions as the main driving force behind the stabilisation of short-range order in 2D magnetism and broaden the horizons of possibilities for exploration of compounds with low anisotropy at an atomically thin level.

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