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二维纳米片界面处的磁有序和铁电性共存。

Coexistence of Magnetic Order and Ferroelectricity at 2D Nanosheet Interfaces.

机构信息

International Center for Materials Nanoarchitectonics (WPI-MANA), National Institute for Materials Science (NIMS) , Tsukuba, Ibaraki 305-0044, Japan.

Synchrotron X-ray Station at SPring-8, National Institute for Materials Science (NIMS) , Sayo, Hyogo 679-5148, Japan.

出版信息

J Am Chem Soc. 2016 Jun 22;138(24):7621-5. doi: 10.1021/jacs.6b02722. Epub 2016 Jun 13.

Abstract

Multiferroic materials, in which the electronic polarization can be switched by a magnetic field and vice versa, are of fundamental importance for new electronic technologies. However, there exist very few single-phase materials that exhibit such cross-coupling properties at room temperature, and heterostructures with a strong magnetoelectric coupling have only been made with complex techniques. Here, we present a rational design for multiferroic materials by use of a layer-by-layer engineering of 2D nanosheets. Our approach to new multiferroic materials is the artificial construction of high-quality superlattices by interleaving ferromagnetic Ti0.8Co0.2O2 nanosheets with dielectric perovskite-structured Ca2Nb3O10 nanosheets. Such an artificial structuring allows us to engineer the interlayer coupling, and the (Ti0.8Co0.2O2/Ca2Nb3O10/Ti0.8Co0.2O2) superlattices induce room-temperature ferroelectricity in the presence of the ferromagnetic order. Our technique provides a new route for tailoring artificial multiferroic materials in a highly controllable manner.

摘要

多铁材料中,电子极化可以通过磁场切换,反之亦然,这对新的电子技术至关重要。然而,在室温下表现出这种交叉耦合特性的单相材料非常少,具有强磁电耦合的异质结构仅通过复杂技术制造。在这里,我们通过二维纳米片的层层工程设计提出了多铁材料的合理设计。我们设计新的多铁材料的方法是通过用铁磁 Ti0.8Co0.2O2 纳米片与介电钙钛矿结构的 Ca2Nb3O10 纳米片交替来人工构建高质量的超晶格。这种人工结构允许我们设计层间耦合,(Ti0.8Co0.2O2/Ca2Nb3O10/Ti0.8Co0.2O2)超晶格在存在铁磁有序的情况下诱导室温铁电性。我们的技术为以高度可控的方式定制人工多铁材料提供了新途径。

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