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PNAS Plus: Interface-induced multiferroism by design in complex oxide superlattices

机译:PNAS Plus:通过设计在复杂氧化物超晶格中界面引起的多铁性

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摘要

Interfaces between materials present unique opportunities for the discovery of intriguing quantum phenomena. Here, we explore the possibility that, in the case of superlattices, if one of the layers is made ultrathin, unexpected properties can be induced between the two bracketing interfaces. We pursue this objective by combining advanced growth and characterization techniques with theoretical calculations. Using prototype La2/3Sr1/3MnO3 (LSMO)/BaTiO3 (BTO) superlattices, we observe a structural evolution in the LSMO layers as a function of thickness. Atomic-resolution EM and spectroscopy reveal an unusual polar structure phase in ultrathin LSMO at a critical thickness caused by interfacing with the adjacent BTO layers, which is confirmed by first principles calculations. Most important is the fact that this polar phase is accompanied by reemergent ferromagnetism, making this system a potential candidate for ultrathin ferroelectrics with ferromagnetic ordering. Monte Carlo simulations illustrate the important role of spin–lattice coupling in LSMO. These results open up a conceptually intriguing recipe for developing functional ultrathin materials via interface-induced spin–lattice coupling.
机译:材料之间的界面为发现有趣的量子现象提供了独特的机会。在这里,我们探讨了在超晶格情况下,如果将其中一层制成超薄的可能性,则可能会在两个包围界面之间引发意外的特性。我们通过将先进的生长和表征技术与理论计算相结合来实现这一目标。使用原型La2 / 3Sr1 / 3MnO3(LSMO)/ BaTiO3(BTO)超晶格,我们观察到LSMO层中的结构随厚度变化。原子分辨率的EM和光谱学表明,由于与相邻BTO层的连接而导致的临界厚度下,超薄LSMO中存在一个异常的极性结构相,这一点已通过第一原理计算得到证实。最重要的是,该极性相伴随着重新出现的铁磁性,这使得该系统成为具有铁磁有序性的超薄铁电体的潜在候选者。蒙特卡洛模拟说明了自旋-晶格耦合在LSMO中的重要作用。这些结果为通过界面诱导的自旋-晶格耦合开发功能性超薄材料开辟了概念上引人入胜的配方。

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