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http://hdl.handle.net/10397/100295
| Title: | Controllable defect driven symmetry change and domain structure evolution in BiFeO₃ with enhanced tetragonality | Authors: | Chen, C Wang, C Cai, X Xu, C Li, C Zhou, J Luo, Z Fan, Z Qin, M Zeng, M Lu, X Gao, X Kentsch, U Yang, P Zhou, G Wang, N Zhu, Y Zhou, S Chen, D Liu, JM |
Issue Date: | 7-May-2019 | Source: | Nanoscale, 7 May 2019, v. 11, no. 17, p. 8110-8118 | Abstract: | Defect engineering has been a powerful tool to enable the creation of exotic phases and the discovery of intriguing phenomena in ferroelectric oxides. However, the accurate control of the concentration of defects remains a big challenge. In this work, ion implantation, which can provide controllable point defects, allows us to produce a controlled defect driven true super-tetragonal (T) phase with a single-domain-state in ferroelectric BiFeO₃ thin films. This point-defect engineering is found to drive the phase transition from the as-grown mixed rhombohedral-like (R) and tetragonal-like (MC) phase to true tetragonal (T) symmetry and induce the stripe multi-nanodomains to a single domain state. By further increasing the injected dose of the He ion, we demonstrate an enhanced tetragonality super-tetragonal (super-T) phase with the largest c/a ratio of ∼1.3 that has ever been experimentally achieved in BiFeO₃. A combination of the morphology change and domain evolution further confirms that the mixed R/MC phase structure transforms to the single-domain-state true tetragonal phase. Moreover, the re-emergence of the R phase and in-plane nanoscale multi-domains after heat treatment reveal the memory effect and reversible phase transition and domain evolution. Our findings demonstrate the reversible control of R-Mc-T-super T symmetry changes (leading to the creation of true T phase BiFeO₃ with enhanced tetragonality) and multidomain-single domain structure evolution through controllable defect engineering. This work also provides a pathway to generate large tetragonality (or c/a ratio) that could be extended to other ferroelectric material systems (such as PbTiO₃, BaTiO₃ and HfO₂) which might lead to strong polarization enhancement. | Publisher: | Royal Society of Chemistry | Journal: | Nanoscale | ISSN: | 2040-3364 | EISSN: | 2040-3372 | DOI: | 10.1039/c9nr00932a | Rights: | This journal is © The Royal Society of Chemistry 2019 The following publication Chen, C., Wang, C., Cai, X., Xu, C., Li, C., Zhou, J., ... & Liu, J. M. (2019). Controllable defect driven symmetry change and domain structure evolution in BiFeO 3 with enhanced tetragonality. Nanoscale, 11(17), 8110-8118 is available at https://doi.org/10.1039/c9nr00932a. |
| Appears in Collections: | Journal/Magazine Article |
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|---|---|---|---|---|
| Xu_Controllable_Defect_Driven.pdf | Pre-Published version | 1.69 MB | Adobe PDF | View/Open |
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