Literature DB >> 30138564

Deterministic, Reversible, and Nonvolatile Low-Voltage Writing of Magnetic Domains in Epitaxial BaTiO3/Fe3O4 Heterostructure.

Gaokuo Zhong1,2,3,4, Feng An2, Yugandhar Bitla5, Jinbin Wang2, Xiangli Zhong2, Junxi Yu1,2, Wenpei Gao4, Yi Zhang4, Congbing Tan2, Yun Ou1, Jie Jiang2, Ying-Hui Hsieh3, Xiaoqing Pan4, Shuhong Xie2, Ying-Hao Chu3, Jiangyu Li1,6.   

Abstract

The ability to electrically write magnetic bits is highly desirable for future magnetic memories and spintronic devices, though fully deterministic, reversible, and nonvolatile switching of magnetic moments by electric field remains elusive despite extensive research. In this work, we develop a concept to electrically switch magnetization via polarization modulated oxygen vacancies, and we demonstrate the idea in a multiferroic epitaxial heterostructure of BaTiO3/Fe3O4 fabricated by pulsed laser deposition. The piezoelectricity and ferroelectricity of BaTiO3 have been confirmed by macro- and microscale measurements, for which Fe3O4 serves as the top electrode for switching the polarization. X-ray absorption spectroscopy and X-ray magnetic circular dichroism spectra indicate a mixture of Fe2+ and Fe3+ at O h sites and Fe3+ at T d sites in Fe3O4, while the room-temperature magnetic domains of Fe3O4 are revealed by microscopic magnetic force microscopy measurements. It is demonstrated that the magnetic domains of Fe3O4 can be switched by not only magnetic fields but also electric fields in a deterministic, reversible, and nonvolatile manner, wherein polarization reversal by electric field modulates the oxygen vacancy distribution in Fe3O4, and thus its magnetic state, making it attractive for electrically written magnetic memories.

Entities:  

Keywords:  Fe3O4; low-voltage writing; magnetoelectric coupling; multiferroic heterostructure; oxygen vacancies

Year:  2018        PMID: 30138564     DOI: 10.1021/acsnano.8b05284

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  Super-Flexible Freestanding BiMnO3 Membranes with Stable Ferroelectricity and Ferromagnetism.

Authors:  Cai Jin; Yuanmin Zhu; Xiaowen Li; Feng An; Wenqiao Han; Qi Liu; Sixia Hu; Yanjiang Ji; Zedong Xu; Songbai Hu; Mao Ye; Gaokuo Zhong; Meng Gu; Lang Chen
Journal:  Adv Sci (Weinh)       Date:  2021-10-28       Impact factor: 16.806

  1 in total

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