Quasi-static modulation of multiferroic properties in flexible magnetoelectric Cr2O3/muscovite heteroepitaxy

Due to the strong coupling between electrical polarization and magnetization, magnetoelectric materials show promising features for low-power spintronics and ultra-sensitive magnetic sensors. Compared to the conventional tunning of magnetoelectricity, this work presents a modulation of magnetic and...

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Veröffentlicht in:Acta materialia 2023-01, Vol.243, p.118509, Article 118509
Hauptverfasser: Lai, Yu-Hong, Shao, Pao-Wen, Kuo, Chang-Yang, Liu, Cheng-En, Hu, Zhiwei, Luo, Chen, Chen, Kai, Radu, Florin, Wang, Yong-Jyun, Zheng, Junding, Duan, Chungang, Chang, Chun-Fu, Chang, Li, Chen, Yi-Chun, Cheong, Sang-Wook, Chu, Ying-Hao
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Sprache:eng
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Zusammenfassung:Due to the strong coupling between electrical polarization and magnetization, magnetoelectric materials show promising features for low-power spintronics and ultra-sensitive magnetic sensors. Compared to the conventional tunning of magnetoelectricity, this work presents a modulation of magnetic and electric orders in magnetoelectric material through a quasi-static mechanical strain. To acquire this, linear magnetoelectric Cr2O3 film is fabricated epitaxially on muscovite substrates. Taking the natural flexibility of muscovite, applying a strain to the heterostructure is feasible via mechanical bending. In the bending experiment, the magnetization of Cr2O3 film can be enhanced significantly, and the techniques of X-ray absorption dichroism unveil insights with support from theoretical predictions. Besides, the electric polarization and magnetoelectric coupling of Cr2O3 can also be adjusted by mechanical bending. This work offers a comprehensive understanding of the relationship between quasi-static strain and magnetic and electrical behaviors and opens a new aspect of the combination between magnetoelectric materials and flexible substrates for future development. [Display omitted]
ISSN:1359-6454
DOI:10.1016/j.actamat.2022.118509