School of Chemistry and Materials Science of Shanxi Normal University & Key Laboratory of Magnetic Molecules and Magnetic Information Materials of Ministry of Education , Linfen 041004, China.
Research Institute of Materials Science of Shanxi Normal University & Collaborative Innovation Center for Shanxi Advanced Permanent Magnetic Materials and Techonology , Linfen 041004, China.
ACS Appl Mater Interfaces. 2017 Nov 15;9(45):39855-39862. doi: 10.1021/acsami.7b14503. Epub 2017 Oct 31.
Paramagnetic LaNiO (LNO)-based heterostructures have been attracting the attention of researches, especially since the interesting exchange bias (EB) effect has been observed in (111)-oriented LaMnO (LMO)/LNO superlattices (SLs). However, this effect is not expected to occur in the (001) direction SLs. In this paper, we report the observation of an unexpected EB effect in (001)-oriented (LMO)/(LNO) SLs. The orbits of interfacial Mn/Ni ions preferentially occupy the strain-stabilized x - y in ultrathin LNO layers [t ≤ 4 unit cells (u.c.)]. Conversely, as the LNO layer becomes thicker (t ≥ 6 u.c.), the EB effect is absent, and the orbits are reconstructed to form the 3z - r preferential occupancy. The absence of the EB in thicker LNO-based SLs is attributed to the interfacial charge transfer suppressed by orbital reconstruction as a consequence of the increasing LNO thickness. In the thinner LNO-based SLs, the larger charge transfer results in stronger localized magnetic moments for the cause of the EB effect. These results provide a useful interpretation of the relationship between macroscopic magnetic properties and the microscopic electronic structure in oxide-based heterostructures.
具有反铁磁 LaNiO(LNO)的异质结构引起了研究人员的关注,特别是在(111)取向的 LaMnO(LMO)/LNO 超晶格(SL)中观察到有趣的交换偏置(EB)效应之后。然而,预计在(001)方向 SLs 中不会发生这种效应。在本文中,我们报告了在(001)取向的(LMO)/(LNO)SLs 中观察到意想不到的 EB 效应。界面 Mn/Ni 离子的轨道优先占据应变稳定的 x-y 在超薄 LNO 层中[ t ≤ 4 个单位细胞(u.c.)]。相反,随着 LNO 层变厚(t≥6 u.c.),EB 效应不存在,轨道被重建以形成 3z-r 优先占据。较厚的基于 LNO 的 SLs 中不存在 EB 是由于轨道重建抑制了界面电荷转移,这是由于 LNO 厚度增加的结果。在较薄的基于 LNO 的 SLs 中,较大的电荷转移导致更强的局域磁矩,这是 EB 效应的原因。这些结果为氧化物基异质结构中宏观磁性能与微观电子结构之间的关系提供了有用的解释。