论文标题
坚硬的铁磁降低到铁插入型米硫化的最薄极限
Hard ferromagnetism down to the thinnest limit of iron-intercalated tantalum disulfide
论文作者
论文摘要
二维(2D)磁性晶体对利用自旋操作的微型和超低功率电子设备有希望。在这些材料中,大型,可控制的磁晶各向异性是稳定和操纵远距离磁性的先决条件。在已知的2D磁晶体中,相对弱磁晶的各向异性会导致通常软铁磁。在这里,我们证明铁磁订单一直持续到最薄的限制fe $ _x $ _x $ tas $ _2 $(fe-Intercalcalcated Bileayer 2H-TAS $ _2 $),具有高达3 tesla的巨大胁迫。我们通过化学插入2H-TAS $ _2 $晶体并进行可变的量子传输,传输电子显微镜以及共核Raman光谱测量,以使对辅助效果,互联网效果,脉络上/室外脉络膜的效果降低了新的光线,从而制备了Fe IntercalcationTa的Tas $ _2 $。 fe $ _x $ tas $ _2 $。更普遍地,我们表明,化学插入可为低维磁体提供丰富的合成参数空间,其中磁性特性还可以通过选择宿主材料和互化身份/量的选择来量身定制,此外,除了在原子上薄的van der a der waals晶体中可用的多种自由度。
Two-dimensional (2D) magnetic crystals hold promise for miniaturized and ultralow power electronic devices that exploit spin manipulation. In these materials, large, controllable magnetocrystalline anisotropy is a prerequisite for the stabilization and manipulation of long-range magnetic order. In known 2D magnetic crystals, relatively weak magnetocrystalline anisotropy results in typically soft ferromagnetism. Here, we demonstrate that ferromagnetic order persists down to the thinnest limit of Fe$_x$TaS$_2$ (Fe-intercalated bilayer 2H-TaS$_2$) with giant coercivities up to 3 tesla. We prepare Fe-intercalated TaS$_2$ by chemical intercalation of van der Waals layered 2H-TaS$_2$ crystals and perform variable-temperature quantum transport, transmission electron microscopy, and confocal Raman spectroscopy measurements to shed new light on the coupled effects of dimensionality, degree of intercalation, and intercalant order/disorder on the hard ferromagnetic behavior of Fe$_x$TaS$_2$. More generally, we show that chemical intercalation gives access to a rich synthetic parameter space for low-dimensional magnets, in which magnetic properties can be tailored by the choice of the host material and intercalant identity/amount, in addition to the manifold distinctive degrees of freedom available in atomically thin, van der Waals crystals.