Issue 42, 2021

Polarization-switching pathway determined electrical transport behaviors in rhombohedral BiFeO3 thin films

Abstract

We investigated the polarization-switching pathway-dependent electrical transport behaviors in rhombohedral-phase BiFeO3 thin films with point contact geometry. By combining conducting-atomic force microscopy and piezoelectric force microscopy, we simultaneously obtained current–voltage curves and the corresponding domain patterns before and after the polarization switching. The results indicate that for the (001)-oriented film, the abrupt current (due to polarization reversing) increases with the enhanced switching voltage for 109° and 180° switching events. More importantly, the abrupt current can be further improved in (110)- and (111)-oriented thin films, which benefits from the stronger modulation of the interfacial Schottky barrier by the enhanced out-of-plane polarization magnitude. The current on–off ratio obtained in a ∼20 nm thick (111)-oriented BiFeO3 thin film at a readout voltage of ∼3 V exceeds (∼6 × 105)%, which is close to the result from a previous report on ultrathin tetragonal BiFeO3 thin films.

Graphical abstract: Polarization-switching pathway determined electrical transport behaviors in rhombohedral BiFeO3 thin films

Supplementary files

Article information

Article type
Communication
Submitted
20 Jun 2021
Accepted
12 Sep 2021
First published
23 Sep 2021

Nanoscale, 2021,13, 17746-17753

Polarization-switching pathway determined electrical transport behaviors in rhombohedral BiFeO3 thin films

J. Wang, H. Yang, Y. Wang, Y. Fan, D. Liu, Y. Yang, J. Wu, M. Chen, R. Gao, H. Huang, X. Wang, J. Hong, J. Ma, J. Zhang and C. Nan, Nanoscale, 2021, 13, 17746 DOI: 10.1039/D1NR03993H

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