论文标题
氧气不足镍酸盐膜突然崩溃
Sudden collapse of magnetic order in oxygen deficient nickelate films
论文作者
论文摘要
氧空位在控制功能氧化物钙钛矿的电子,磁性,离子和转运性能中起着至关重要的作用。多年来,稀土镍(Renio $ _ {3-X} $)作为一个丰富的平台出现,以研究晶格,电子结构和有序磁性之间的相互作用。在这项研究中,我们使用X射线吸收光谱和成像,谐振X射线散射以及扩展的多重配体配体理论建模的组合研究了Renio $ _ {3-X} $薄膜中电子和磁性结构的演变。我们发现氧空位会改变Ni-O轨道歧管内的电子构型,尽管没有纳米级相距,但仍导致远程电子传输途径的急剧演变。值得注意的是,磁性对载流子掺杂的水平具有稳健性,并且只观察到$(1/4、1/4、1/4)的中等削弱,_ {pc} $抗磁磁序参数,而磁过渡温度在很大程度上是没有变化的。只有在某个点,长距离磁性突然被擦除而没有伴随的结构过渡。我们提出,在引入点缺陷时,将3D磁性超偏途径的逐渐破坏作为缺氧镍突然崩溃的机理。我们的工作表明,与大多数其他氧化物不同,在Renio $ _ {3-X} $中订购的磁性主要对载体掺杂不敏感。去除氧气时有序磁性的突然崩溃可能为固态磁离子离子开关和抗磁磁性旋转旋转的新应用提供了一种新的机制。
Oxygen vacancies play a crucial role in the control of the electronic, magnetic, ionic, and transport properties of functional oxide perovskites. Rare earth nickelates (RENiO$_{3-x}$) have emerged over the years as a rich platform to study the interplay between the lattice, the electronic structure, and ordered magnetism. In this study, we investigate the evolution of the electronic and magnetic structure in thin films of RENiO$_{3-x}$, using a combination of X-ray absorption spectroscopy and imaging, resonant X-ray scattering, and extended multiplet ligand field theory modeling. We find that oxygen vacancies modify the electronic configuration within the Ni-O orbital manifolds, leading to a dramatic evolution of long-range electronic transport pathways despite the absence of nanoscale phase separation. Remarkably, magnetism is robust to substantial levels of carrier doping, and only a moderate weakening of the $(1/4, 1/4, 1/4)_{pc}$ antiferromagnetic order parameter is observed, whereas the magnetic transition temperature is largely unchanged. Only at a certain point long-range magnetism is abruptly erased without an accompanying structural transition. We propose the progressive disruption of the 3D magnetic superexchange pathways upon introduction of point defects as the mechanism behind the sudden collapse of magnetic order in oxygen-deficient nickelates. Our work demonstrates that, unlike most other oxides, ordered magnetism in RENiO$_{3-x}$ is mostly insensitive to carrier doping. The sudden collapse of ordered magnetism upon oxygen removal may provide a new mechanism for solid-state magneto-ionic switching and new applications in antiferromagnetic spintronics.