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Influence of strain and polycrystalline ordering on magnetic properties of high moment rare earth metals and alloys

机译:应变和多晶有序化对高矩稀土金属和合金磁性能的影响

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Despite being the most suitable candidates for solenoid pole pieces in state-of-the-art superconductor-based electromagnets, the intrinsic magnetic properties of heavy rare earth metals and their alloys have gained comparatively little attention. With the potential of integration in micro and nanoscale devices, thin films of Gd, Dy, Tb, DyGd and DyTb were plasma-sputtered and investigated for their in-plane magnetic properties, with an emphasis on magnetization versus temperature profiles. Based on crystal structure analysis of the polycrystalline rare earth films, which consist of a low magnetic moment fcc layer at the seed interface topped with a higher moment hcp layer, an experimental protocol is introduced which allows the direct magnetic analysis of the individual layers. In line with the general trend of heavy lanthanides, the saturation magnetization was found to drop with increasing unit cell size. In situ annealed rare earth films exceeded the saturation magnetization of a high-moment Fe_(65)Co_(35) reference film in the cryogenic temperature regime, proving their potential for pole piece applications; however as-deposited rare earth films were found completely unsuitable. In agreement with theoretical predictions, sufficiently strained crystal phases of Tb and Dy did not exhibit an incommensurate magnetic order, unlike their single-crystal counterparts which have a helical phase. DyGd and DyTb alloys followed the trends of the elemental rare earth metals in terms of crystal structure and magnetic properties. Inter-rare-earth alloys hence present a desirable blend of saturation magnetization and operating temperature.
机译:尽管最先进的基于超导体的电磁体最适合用作螺线管极靴,但重稀土金属及其合金的固有磁性能却很少受到关注。由于具有在微型和纳米级器件中集成的潜力,对Gd,Dy,Tb,DyGd和DyTb薄膜进行了等离子溅射,并研究了它们的面内磁性能,重点是磁化与温度的关系。基于多晶稀土薄膜的晶体结构分析,该晶体薄膜由位于籽晶界面的低磁矩fcc层和较高的矩hcp层组成,引入了实验方案,可以对各个层进行直接磁分析。与重镧系元素的一般趋势一致,发现饱和磁化强度随晶胞尺寸的增加而下降。原位退火稀土薄膜在低温条件下超过了高矩Fe_(65)Co_(35)参考薄膜的饱和磁化强度,证明了它们在极靴应用中的潜力。但是,发现沉积的稀土薄膜是完全不合适的。与理论预测一致,Tb和Dy的充分应变的晶相没有呈现不相称的磁序,这与它们具有螺旋相的单晶对应物不同。 DyGd和DyTb合金在晶体结构和磁性方面遵循了稀土元素金属的趋势。因此,稀土族合金呈现出理想的饱和磁化强度与工作温度的混合。

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