X-ray Science Division, Argonne National Laboratory, Argonne, IL, 60439, USA.
Center for Nano-Materials, Argonne National Laboratory, Argonne, IL, 60439, USA.
Sci Rep. 2018 Jan 29;8(1):1778. doi: 10.1038/s41598-018-20101-0.
In materials where two or more ordering degrees of freedom are closely matched in their free energies, coupling between them, or multiferroic behavior can occur. These phenomena can produce a very rich phase behavior, as well as emergent phases that offer useful properties and opportunities to reveal novel phenomena in phase transitions. The ordered alloy FeRh undergoes an antiferromagnetic to ferromagnetic phase transition at ~375 K, which illustrates the interplay between structural and magnetic order mediated by a delicate energy balance between two configurations. We have examined this transition using a combination of high-resolution x-ray structural and magnetic imaging and comprehensive x-ray magnetic circular dichroism spectroscopy. We find that the transition proceeds via a defect-driven domain nucleation and growth mechanism, with significant return point memory in both the structural and magnetic domain configurations. The domains show evidence of inhibited growth after nucleation, resulting in a quasi-2 order temperature behavior.
在两种或多种自由度在自由能上非常匹配的材料中,它们之间可能会发生耦合,或者出现多铁性行为。这些现象可以产生非常丰富的相行为,以及出现新的相,这些相具有有用的性质和揭示相变中新型现象的机会。有序合金 FeRh 在~375 K 经历反铁磁到铁磁相变,这说明了结构和磁有序之间的相互作用,这是由两种构型之间微妙的能量平衡介导的。我们使用高分辨率 X 射线结构和磁成像以及综合 X 射线磁圆二色光谱学来研究这种转变。我们发现,该转变通过缺陷驱动的畴成核和生长机制进行,在结构和磁畴构型中都具有显著的返回点记忆。畴在成核后显示出抑制生长的证据,导致准 2 级温度行为。