3D architectures of single-crystalline complex oxides

Authors
Kim, Shin-IkChoi, Hyung-JinLee, GwangyeobRoh, Chang JaeJung, InkiJung, Soo YoungNing, RuiguangWon, Sung OkChang, Hye JungLee, Jong SeokKim, Seong KeunKim, Jin-SangKang, Chong-YunChoiag, Ji-WonBaek, Seung-Hyub
Issue Date
2020-06-01
Publisher
ROYAL SOC CHEMISTRY
Citation
MATERIALS HORIZONS, v.7, no.6, pp.1552 - 1557
Abstract
Controlling the structure of a material over a wide range of scales has been extensively pursued because the structure dictates its function. Here, we explore the formation of 3D structures at almost a millimetre scale using single-crystal complex oxides, which has been challenging because of the brittle nature of oxides. Our scheme is to release epitaxial oxide thin film heterostructures from the rigid substrate in order to utilise the elastic epitaxial strain as a driving force for self-shaping the flexible free-standing membrane in a controlled manner. Using an epitaxial free-standing LaAlO3/SrTiO3 membrane as a model system, we were able to create various 3D forms, such as cylindrically-rolled, spherically-bent, and helically-twisted structures, where the inversion-symmetry is broken by the strain gradient via flexoelectric effects. Our results will provide opportunities not only to broaden the application of functional oxides toward flexible electronics, but also to discover new functionalities driven by 3D architectures at various scales.
Keywords
TETRAGONAL PHASE; VOLUME COLLAPSE; ELECTRON-GAS; FERROELECTRICITY; STABILIZATION; ENHANCEMENT; TETRAGONAL PHASE; VOLUME COLLAPSE; ELECTRON-GAS; FERROELECTRICITY; STABILIZATION; ENHANCEMENT
ISSN
2051-6347
URI
https://pubs.kist.re.kr/handle/201004/118541
DOI
10.1039/d0mh00292e
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KIST Article > 2020
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