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立方相BaTiO₃-SrTiO₃纳米复合材料中的界面驱动多铁性

Interface-Driven Multiferroicity in Cubic BaTiO-SrTiO Nanocomposites.

作者信息

Shirsath Sagar E, Assadi M Hussein N, Zhang Ji, Kumar Nitish, Gaikwad Anil S, Yang Jack, Maynard-Casely Helen E, Tay Yee Yan, Du Jianhao, Wang Haoyu, Yao Yin, Chen Zibin, Zhang Jinxing, Zhang Shujun, Li Sean, Wang Danyang

机构信息

School of Materials Science and Engineering, The University of New South Wales, Sydney, New South Wales 2052, Australia.

RIKEN Center for Emergent Matter Science (CEMS), 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.

出版信息

ACS Nano. 2022 Sep 27;16(9):15413-15424. doi: 10.1021/acsnano.2c07215. Epub 2022 Sep 7.

Abstract

Perovskite multiferroics have drawn significant attention in the development of next-generation multifunctional electronic devices. However, the majority of existing multiferroics exhibit ferroelectric and ferromagnetic orderings only at low temperatures. Although interface engineering in complex oxide thin films has triggered many exotic room-temperature functionalities, the desired coupling of charge, spin, orbital and lattice degrees of freedom often imposes stringent requirements on deposition conditions, layer thickness and crystal orientation, greatly hindering their cost-effective large-scale applications. Herein, we report an interface-driven multiferroicity in low-cost and environmentally friendly bulk polycrystalline material, namely cubic BaTiO-SrTiO nanocomposites which were fabricated through a simple, high-throughput solid-state reaction route. Interface reconstruction in the nanocomposites can be readily controlled by the processing conditions. Coexistence of room-temperature ferromagnetism and ferroelectricity, accompanying a robust magnetoelectric coupling in the nanocomposites, was confirmed both experimentally and theoretically. Our study explores the 'hidden treasure at the interface' by creating a playground in bulk perovskite oxides, enabling a broad range of applications that are challenging with thin films, such as low-power-consumption large-volume memory and magneto-optic spatial light modulator.

摘要

钙钛矿多铁性材料在下一代多功能电子器件的发展中引起了广泛关注。然而,现有的大多数多铁性材料仅在低温下表现出铁电和铁磁有序。尽管复杂氧化物薄膜中的界面工程引发了许多奇异的室温功能,但电荷、自旋、轨道和晶格自由度的理想耦合通常对沉积条件、层厚度和晶体取向提出了严格要求,极大地阻碍了它们具有成本效益的大规模应用。在此,我们报道了一种在低成本且环境友好的块状多晶材料中由界面驱动的多铁性,即通过简单的高通量固态反应路线制备的立方BaTiO₃-SrTiO₃纳米复合材料。纳米复合材料中的界面重构可以很容易地通过加工条件来控制。通过实验和理论证实了纳米复合材料中室温铁磁性和铁电性的共存以及强大的磁电耦合。我们的研究通过在块状钙钛矿氧化物中创建一个平台来探索“界面处的隐藏宝藏”,从而实现了一系列对薄膜来说具有挑战性的应用,如低功耗大容量存储器和磁光空间光调制器。

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