Microscopic physical origin of polarization induced large tunneling electroresistance in tetragonal-phase BiFeO3

Jing Wang*, Yuanyuan Fan, Yan Song, Jialu Wu, Ruixue Zhu, Rongzhen Gao, Cancan Shao, Houbing Huang, Peng Gao, Ben Xu, Jing Ma, Jinxing Zhang, Ce Wen Nan

*此作品的通讯作者

科研成果: 期刊稿件文章同行评审

8 引用 (Scopus)

摘要

Ferroelectric tunnel junctions have attracted intensive research interest due to the fundamental physics and potential applications in high-density data storage and neuromorphic computation. However, the intrinsic physical origin, especially at atomic scale, of polarization-controllable tunneling current is still controversial due to the degradation of ferroelectric polarization and the extrinsic conduction induced by defects or oxygen vacancies. Here, a large tunneling electroresistance effect of over 10,000% in a thick (∼15 nm) tetragonal-phase BiFeO3 thin film is observed, where a nanoscale point-contact geometry is delicately designed to reduce the extrinsic defect effects. By combining transmission electron microscopy and first-principles calculations, the atomic and electronic structures of BiFeO3 tunneling layer are investigated. The corresponding results indicate the different charge transfer occurs at the top and bottom interface, which induces distinct tunneling barrier asymmetry when the polarization direction is opposite.

源语言英语
文章编号117564
期刊Acta Materialia
225
DOI
出版状态已出版 - 15 2月 2022

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