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应变调控铁/钙钛矿(MgNb)钛酸铅异质结构中挥发性与非挥发性逆磁电效应共存

Strain-Mediated Coexistence of Volatile and Nonvolatile Converse Magnetoelectric Effects in Fe/Pb(MgNb)TiO Heterostructure.

机构信息

Collaborative Innovation Center of Quantum Matter , Beijing 100084, China.

College of Science, National University of Defense Technology , Changsha 410073, China.

出版信息

ACS Appl Mater Interfaces. 2017 Jun 21;9(24):20637-20647. doi: 10.1021/acsami.7b03051. Epub 2017 Jun 7.

DOI:10.1021/acsami.7b03051
PMID:28540731
Abstract

Strain-mediated ferromagnetic/ferroelectric (FE) heterostructures have played an important role in multiferroic materials to investigate the electric-field control of magnetism in the past decade, due to their excellent performances, such as room-temperature operation and large magnetoelectric (ME) coupling effect. Because of the different FE-switching-originated strain behaviors and varied interfacial coupling effect, both loop-like (nonvolatile) and butterfly-like (volatile) converse ME effects have been reported. Here, we investigate the electric-field control of magnetism in a multiferroic heterostructure composed of a polycrystalline Fe thin film and a Pb(MgNb)TiO single crystal, and the experimental results exhibit complex behaviors, suggesting the coexistence of volatile and nonvolatile converse ME effects. By separating the symmetrical and antisymmetrical parts of the electrical modulation of magnetization, we distinguished the loop-like hysteresis and butterfly-like magnetization changes tuned by electric fields, corresponding to the strain effects related to the FE 109° switching and 71/180° switching, respectively. Further magnetic-field-dependent as well as angular-dependent investigation of the converse ME effect confirmed the strain-mediated magnetism involving competition among the Zeeman energy, magnetocrystalline anisotropy energy, and strain-generated magnetoelastic energy. This study is helpful for understanding the electric-field control of magnetism in multiferroic heterostructures as well as its relevant applications.

摘要

应变调控的铁磁/铁电(FE)异质结构在过去十年中在多铁材料中扮演了重要的角色,用于研究磁场的电场控制,这是因为它们具有出色的性能,例如在室温下工作和较大的磁电(ME)耦合效应。由于不同的 FE 开关起源的应变行为和变化的界面耦合效应,已经报道了环形(非易失性)和蝶形(易失性)的逆 ME 效应。在这里,我们研究了由多晶 Fe 薄膜和 Pb(MgNb)TiO 单晶组成的多铁异质结构中磁场的电场控制,实验结果表现出复杂的行为,表明易失性和非易失性逆 ME 效应的共存。通过分离磁极化对电场调制的对称和反对称部分,我们区分了由电场调谐的环形磁滞和蝶形磁化变化,分别对应于与 FE 109°开关和 71/180°开关相关的应变效应。进一步对逆 ME 效应进行磁场相关和角度相关的研究证实了涉及到塞曼能、磁晶各向异性能和应变产生的磁弹性能之间竞争的应变调控的磁性能。这项研究有助于理解多铁异质结构中磁场的电场控制及其相关应用。

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Strain-Mediated Giant Magnetoelectric Coupling in a Crystalline Multiferroic Heterostructure.晶体多铁性异质结构中的应变介导巨磁电耦合
ACS Appl Mater Interfaces. 2021 Feb 10;13(5):6778-6784. doi: 10.1021/acsami.0c18777. Epub 2021 Jan 27.
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Spatially Resolved Electric-Field Manipulation of Magnetism for CoFeB Mesoscopic Discs on Ferroelectrics.
铁电体上CoFeB介观圆盘磁性的空间分辨电场调控
Adv Funct Mater. 2018;28. doi: 10.1002/adfm.201706448.