论文标题
通过SRTIO埋葬的Moire Supercells $ _3 $ nanolayer放松
Buried Moire supercells through SrTiO$_3$ nanolayer relaxation
论文作者
论文摘要
复杂氧化物异质结构的界面为各种电子和磁现象设定了阶段。这些集体效应中的许多源于界面的精确结构布置,而界面又控制了局部自旋和电荷相互作用。当前,界面紧张,因此,由于相邻的晶格不匹配而自然发展的压缩或拉伸应变是通往工程集体材料特性的最常见途径 - 但是,重大进展可能需要探索针对接口相关的全新方法。在这项工作中,我们通过查看完美,未经培训的异质结构的界面来翻开页面,在该界面上,我们在固有无序的srtio $ _3 $(sto)-LSAT界面上确定了一个高度有序的Moire Grattice。使用基于同步加速器的X射线衍射,使用高分辨率的相互空间映射,我们发现了由晶格/LSAT的106/107单位细胞的长期有序的超级电池,这是由高温退火引起的。模型计算证实了实验观察到的散射现象,表明在Moire-Overlap点上,跨间隔键在局部不同。值得注意的是,在2D电子气体系统的家族中,这种超级订购的结构的存在为Moire-Motif调谐的等离子体响应和铁电超结晶度设定了理想条件,并为这些简单的Perovskites中的新界面功能打开了可能性。
The interface of complex oxide heterostructures sets the stage for various electronic and magnetic phenomena. Many of these collective effects originate from the precise structural arrangement at the interface that in turn governs local spin- and charge interactions. Currently, interfacial straining, so the naturally evolving compressive or tensile strain by mismatch of the neighboring lattices, is the most common route towards engineering collective material properties -- yet, significant progress might require exploration of entirely new approaches towards interface correlations. In this work, we turn the page by looking at the interface of a perfectly relaxed, unstrained heterostructure, where we identify a highly ordered Moire lattice at an inherently disordered SrTiO$_3$ (STO) - LSAT interface. Using high-resolution reciprocal space mapping via synchrotron based X-Ray diffraction, we find long-ranged ordered supercells of 106/107 unit cells of STO/LSAT, caused by lattice relaxation through high-temperature annealing. Model calculations confirm the experimentally observed scattering phenomena, showing that cross-interfacial bonding is locally different at the Moire-overlap points. Notably, the presence of such super-ordered structures in the family of 2D electron gas systems sets the ideal conditions for Moire-motif tuned plasmonic responses and ferroelectric super-crystallinity and opens up the possibility to novel interface functionalities in these simple perovskites.