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Atomic-Scale Scanning of Domain Network in the Ferroelectric HfO2 Thin Film

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Title
Atomic-Scale Scanning of Domain Network in the Ferroelectric HfO<sub>2</sub> Thin Film
Author(s)
Kunwoo Park; Dongmin Kim; Lee, Kyoungjun; Lee, Hyun-Jae; Jihoon Kim; Sungsu Kang; Lin, Alex; Pattison, Alexander J.; Theis, Wolfgang; Kim, Chang Hoon; Hyesung Choi; Cho, Jung Woo; Ercius, Peter; Lee, Jun Hee; Chae, Seung Chul; Jungwon Park
Publication Date
2024-09
Journal
ACS Nano, v.18, no.38, pp.26315 - 26326
Publisher
American Chemical Society
Abstract
Ferroelectric HfO2-based thin films have attracted much interest in the utilization of ferroelectricity at the nanoscale for next-generation electronic devices. However, the structural origin and stabilization mechanism of the ferroelectric phase are not understood because the film is typically nanocrystalline with active yet stochastic ferroelectric domains. Here, electron microscopy is used to map the in-plane domain network structures of epitaxially grown ferroelectric Y:HfO2 films in atomic resolution. The ferroelectricity is confirmed in free-standing Y:HfO2 films, allowing for investigating the structural origin for their ferroelectricity by 4D-STEM, high-resolution STEM, and iDPC-STEM. At the grain boundaries of <111>-oriented Pca2(1) orthorhombic grains, a high-symmetry mixed-(R3m, Pnm2(1)) phase is induced, exhibiting enhanced polarization due to in-plane compressive strain. Nanoscale Pca2(1) orthorhombic grains and their grain boundaries with mixed-(R3m, Pnm2(1)) phases of higher symmetry cooperatively determine the ferroelectricity of the Y:HfO2 film. It is also found that such ferroelectric domain networks emerge when the film thickness is beyond a finite value. Furthermore, in-plane mapping of oxygen positions overlaid on ferroelectric domains discloses that polarization is suppressed at vertical domain walls, while it is active when domains are aligned horizontally with subangstrom domain walls. In addition, randomly distributed 180 degrees charged domain walls are confined by spacer layers.
URI
https://pr.ibs.re.kr/handle/8788114/15647
DOI
10.1021/acsnano.4c08721
ISSN
1936-0851
Appears in Collections:
Center for Nanoparticle Research(나노입자 연구단) > 1. Journal Papers (저널논문)
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