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ProtonationDriven Polarization Retention Failure in Nano-Columnar Lead-Free Ferroelectric Thin Films

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Title
ProtonationDriven Polarization Retention Failure in Nano-Columnar Lead-Free Ferroelectric Thin Films
Author(s)
Sheeraz, Muhammad; Ahn, Chang Won; Duong, Nguyen Xuan; Hwang, Soo-Yoon; Jang, Ji-Soo; Kim, Eun-Young; Kim, Yoon Ki; Lee, Jaeyeong; Jin, Jong Sung; Bae, Jong-Seong; Lee, Myang Hwan; Han, Hyoung-Su; Kim, Gi-Yeop; Cho, Shinuk; Song, Tae Kwon; Yang, Sang Mo; Bu, Sang Don; Baek, Seung-Hyub; Si-Young Choi; Kim, Ill Won; Kim, Tae Heon
Publication Date
2024-12
Journal
Advanced Science, v.11, no.48
Publisher
Wiley-VCH Verlag
Abstract
Understanding microscopic mechanisms of polarization retention characteristics in ferroelectric thin films is of great significance for exploring unusual physical phenomena inaccessible in the bulk counterparts and for realizing thin-film-based functional electronic devices. Perovskite (K,Na)NbO3 is an excellent class of lead-free ferroelectric oxides attracting tremendous interest thanks to its potential applications to nonvolatile memory and eco-friendly energy harvester/storage. Nonetheless, in-depth investigation of ferroelectric properties of (K,Na)NbO3 films and the following developments of nano-devices are limited due to challenging thin-film fabrication associated with nonstoichiometry by volatile K and Na atoms. Herein, ferroelectric (K,Na)NbO3 films of which the atomic-level geometrical structures strongly depend on thickness-dependent strain relaxation are epitaxially grown. Nanopillar crystal structures are identified in fully relaxed (K,Na)NbO3 films to the bulk states representing a continuous reduction of switchable polarization under air environments, that is, polarization retention failures. Protonation by water dissociation is responsible for the humidity-induced retention loss in nano-columnar (K,Na)NbO3 films. The protonation-driven polarization retention failure originates from domain wall pinning by the accumulation of mobile hydrogen ions at charged domain walls for effective screening of polarization-bound charges. Conceptually, the results will be utilized for rational design to advanced energy materials such as photo-catalysts enabling ferroelectric tuning of water splitting. © 2024 The Author(s). Advanced Science published by Wiley-VCH GmbH.
URI
https://pr.ibs.re.kr/handle/8788114/16002
DOI
10.1002/advs.202408784
Appears in Collections:
Center for Van der Waals Quantum Solids(반데르발스 양자 물질 연구단) > 1. Journal Papers (저널논문)
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