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超导二维掺杂镧铜酸盐薄膜外延界面处的阳离子再分布。

Cationic Redistribution at Epitaxial Interfaces in Superconducting Two-Dimensionally Doped Lanthanum Cuprate Films.

机构信息

Max Planck Institute for Solid State Research, Heisenbergstr. 1, 70569 Stuttgart, Germany.

出版信息

ACS Appl Mater Interfaces. 2016 Oct 12;8(40):27368-27375. doi: 10.1021/acsami.6b09739. Epub 2016 Sep 29.

Abstract

The exploration of interface effects in complex oxide heterostructures has led to the discovery of novel intriguing phenomena in recent years and has opened the path toward the precise tuning of material properties at the nanoscale. One recent example is space-charge superconductivity. Among the complex range of effects which may arise from phase interaction, a crucial role is played by cationic intermixing, which defines the final chemical composition of the interface. In this work, we performed a systematic study on the local cationic redistribution of two-dimensionally doped lanthanum cuprate films grown by oxide molecular beam epitaxy, in which single LaO layers in the epitaxial crystal structure were substituted by layers of differently sized and charged dopants (Ca, Sr, Ba, and Dy). In such a model system, in which the dopant undergoes an asymmetric redistribution across the interface, the evolution of the cationic concentration profile can be effectively tracked by means of atomically resolved imaging and spectroscopic methods. This allowed for the investigation of the impact of the dopant chemistry (ionic size and charge) and of the growth conditions (temperature) on the final superconducting and structural properties. A qualitative model for interface cationic intermixing, based on thermodynamic considerations, is proposed. This work highlights the key role which cationic redistribution may have in the definition of the final interface properties and represents a further step forward the realization of heterostructures with improved quality.

摘要

近年来,对复杂氧化物异质结构中界面效应的探索导致了一些新奇有趣现象的发现,并为在纳米尺度上精确调整材料性质开辟了道路。空间电荷超导性就是最近的一个例子。在可能由相相互作用产生的复杂效应中,阳离子混合起着至关重要的作用,它决定了界面的最终化学组成。在这项工作中,我们通过氧化物分子束外延生长二维掺杂镧铜酸盐薄膜进行了系统的研究,其中外延晶体结构中的单个 LaO 层被不同尺寸和电荷的掺杂剂(Ca、Sr、Ba 和 Dy)的层取代。在这样的模型体系中,掺杂剂在界面上发生不对称的重新分布,通过原子分辨成像和光谱方法可以有效地跟踪阳离子浓度分布的演化。这使得可以研究掺杂剂化学性质(离子尺寸和电荷)和生长条件(温度)对最终超导和结构性质的影响。提出了一个基于热力学考虑的界面阳离子混合的定性模型。这项工作强调了阳离子重排在定义最终界面性质方面的关键作用,并代表了在提高质量的异质结构实现方面的又一进步。

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