论文标题
在自我裂化的CR1+ΔTe2外延膜中调整磁性
Tailoring Magnetism in Self-intercalated Cr1+δTe2 Epitaxial Films
论文作者
论文摘要
磁过渡金属二分法(TMD)膜最近已成为有前途的候选者,可容纳与下一代自旋装置相关的新型磁相。然而,以居里温度(TC)为特征的磁化方向或各向异性的系统控制及其热稳定性在此类薄膜中仍有待实现。在这里,我们介绍了自我交织的外延CR1+ΔTe2膜,作为在TMD膜中实现系统/平滑磁性剪裁的平台。使用基于分子束外延(MBE)的技术,我们实现了在宽范围内平滑调谐(0.33-0.82)的外观上的CR1+ΔTe2膜,同时保持Nias型晶体结构。随着δ的增加,我们发现TC从160 K到350 K的单调增强,以及磁各向异性从平面外到平面易于轴构型的旋转,以实现固定膜厚度。传统偶极和轨道矩项的贡献不足以解释观察到的磁行为的演变。取而代之的是,从头算的计算表明,抗磁相互作用与δ的出现及其与常规铁磁磁性的相互作用可能在观察到的趋势中起关键作用。据我们所知,这构成了TMD膜中室温跨室温的可调TC和磁各向异性的首次演示,并为用于自旋应用的新型磁性阶段铺平了道路。
Magnetic transition metal dichalcogenide (TMD) films have recently emerged as promising candidates to host novel magnetic phases relevant to next-generation spintronic devices. However, systematic control of the magnetization orientation, or anisotropy, and its thermal stability, characterized by Curie temperature (Tc) remains to be achieved in such films. Here we present self-intercalated epitaxial Cr1+δTe2 films as a platform for achieving systematic/smooth magnetic tailoring in TMD films. Using a molecular beam epitaxy (MBE) based technique, we have realized epitaxial Cr1+δTe2 films with smoothly tunable over a wide range (0.33-0.82), while maintaining NiAs-type crystal structure. With increasing δ, we found monotonic enhancement of Tc from 160 to 350 K, and the rotation of magnetic anisotropy from out-of-plane to in-plane easy axis configuration for fixed film thickness. Contributions from conventional dipolar and orbital moment terms are insufficient to explain the observed evolution of magnetic behavior with δ. Instead, ab initio calculations suggest that the emergence of antiferromagnetic interactions with δ, and its interplay with conventional ferromagnetism, may play a key role in the observed trends. To our knowledge, this constitutes the first demonstration of tunable Tc and magnetic anisotropy across room temperature in TMD films, and paves the way for engineering novel magnetic phases for spintronic applications.