Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/114594
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Title: Competing effects of temperature and mechanical stress on polar vortex transition in oxide superlattices
Authors: Chen, P
Hou, X 
Zhang, J
Tan, C
Gao, P
Liang, Y
Tian, X
Liao, L
Yang, XS 
Jiang, Z
Xu, Z
Wang, J
Bai, X
Issue Date: 15-Nov-2024
Source: Physical review B : covering condensed matter and materials physics, 15 Nov. 2024, v. 110, no. 19, 195417
Abstract: The interplay of different forms of energies in oxide superlattices, such as elastic, electrostatic, and gradient energies, can result in a stable long-range ordered polar vortex structure at room temperature. However, the role between these energies in determining the vortex structure still remains largely elusive due to the intricate interplay. By using a comprehensive in situ TEM apparatus and a prototype system, PbTiO3/SrTiO3 superlattice, we demonstrate that the vortex structure undergoes a first-order transition at the temperature around 653 K, while the application of in-plane mechanical stress at such a high temperature results in the reemergence of vortex structure. Cryogenic cooling to 94 K raises the stability of vortices, which would be destabilized by loading of out-of-plane mechanical stress. The results can be reproduced and well interpreted by phase-field simulations. These findings not only reveal the competing role of the temperature and mechanical stress at atomic scale but also demonstrate a feasible way to operate the vortex-based nanodevices working in harsh environments.
Publisher: American Physical Society
Journal: Physical review B : covering condensed matter and materials physics 
ISSN: 2469-9950
EISSN: 2469-9969
DOI: 10.1103/PhysRevB.110.195417
Rights: ©2024 American Physical Society
The following publication Chen, P., Hou, X., Zhang, J., Tan, C., Gao, P., Liang, Y., Tian, X., Liao, L., Yang, X.-S., Jiang, Z., Xu, Z., Wang, J., & Bai, X. (2024). Competing effects of temperature and mechanical stress on polar vortex transition in oxide superlattices. Physical Review B, 110(19), 195417 is available at https://doi.org/10.1103/PhysRevB.110.195417.
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