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Ultrahigh dielectric permittivity in oxide ceramics by hydrogenationopen access

Authors
Duong, Nguyen XuanJang, Ji-SooJung, Min-HyoungBae, Jong-SeongAhn, Chang WonJin, Jong SungIhm, KyuwookKim, GyehyeonLim, So YeonLee, JongminDung, Dang DucLee, SoonilKim, Young -MinLee, SanghanYang, Sang MoSohn, ChangheeKim, Ill WonJeong, Hu YoungBaek, Seung-HyubKim, Tae Heon
Issue Date
Feb-2023
Publisher
NLM (Medline)
Citation
Science advances, v.9, no.8
Journal Title
Science advances
Volume
9
Number
8
URI
https://scholarworks.sookmyung.ac.kr/handle/2020.sw.sookmyung/152019
DOI
10.1126/sciadv.add8328
ISSN
2375-2548
2375-2548
Abstract
Boosting dielectric permittivity representing electrical polarizability of dielectric materials has been considered a keystone for achieving scientific breakthroughs as well as technological advances in various multifunctional devices. Here, we demonstrate sizable enhancements of low-frequency dielectric responses in oxygen-deficient oxide ceramics through specific treatments under humid environments. Ultrahigh dielectric permittivity (~5.2 × 106 at 1 Hz) is achieved by hydrogenation, when Ni-substituted BaTiO3 ceramics are exposed to high humidity. Intriguingly, thermal annealing can restore the dielectric on-state (exhibiting huge polarizability in the treated ceramics) to the initial dielectric off-state (displaying low polarizability of ~103 in the pristine ceramics after sintering). The conversion between these two dielectric states via the ambient environment-mediated treatments and the successive application of external stimuli allows us to realize reversible control of dielectric relaxation characteristics in oxide ceramics. Conceptually, our findings are of practical interest for applications to highly efficient dielectric-based humidity sensors.
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