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Dynamic Atomic Reconstruction: How Fe 3 O 4 Thin Films Evade Polar Catastrophe for Epitaxy

机译:动态原子重建:Fe 3 O 4薄膜如何避免极性灾难对外延的影响

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Polar catastrophe at the interface of oxide materials with strongly correlated electrons has triggered a flurry of new research activities. The expectations are that the design of such advanced interfaces will become a powerful route to engineer devices with novel functionalities. Here, we investigate the initial stages of growth and the electronic structure of the spintronic Fe 3 O 4 / MgO ( 001 ) interface. Using soft x-ray absorption spectroscopy, we have discovered that the so-called A-sites are completely missing in the first Fe 3 O 4 monolayer. This discovery allows us to develop an unexpected but elegant growth principle in which, during deposition, the Fe atoms are constantly on the move to solve the divergent electrostatic potential problem, thereby ensuring epitaxy and stoichiometry at the same time. This growth principle provides a new perspective for the design of interfaces.
机译:氧化物材料与强相关电子的界面处的极地巨灾引发了一系列新的研究活动。期望这样的高级接口的设计将成为设计具有新颖功能的设备的有力途径。在这里,我们研究了自旋电子Fe 3 O 4 / MgO(001)界面的生长初期和电子结构。使用软X射线吸收光谱法,我们发现在第一个Fe 3 O 4单层中完全没有所谓的A位。这一发现使我们能够开发出出乎意料但又优雅的生长原理,其中在沉积过程中,Fe原子不断在移动,以解决发散的静电势问题,从而同时确保外延和化学计量。这种增长原理为接口设​​计提供了新的视角。

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