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Tuning Piezoelectricity via Thermal Annealing at a Freestanding Ferroelectric Membrane

Tuning the ferroelectric domain structure by a combination of elastic and electrostatic engineering provides an effective route for enhanced piezoelectricity. However, for epitaxial thin films, the clamping effect imposed by the substrate does not allow aftergrowth tuning and also limits the electro...

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Bibliographic Details
Published in:Nano letters 2023-04, Vol.23 (7), p.2808-2815
Main Authors: Han, Lu, Yang, Xinrui, Lun, Yingzhuo, Guan, Yue, Huang, Futao, Wang, Shuhao, Yang, Jiangfeng, Gu, Chenyi, Gu, Zheng-Bin, Liu, Lisha, Wang, Yaojin, Wang, Peng, Hong, Jiawang, Pan, Xiaoqing, Nie, Yuefeng
Format: Article
Language:English
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Summary:Tuning the ferroelectric domain structure by a combination of elastic and electrostatic engineering provides an effective route for enhanced piezoelectricity. However, for epitaxial thin films, the clamping effect imposed by the substrate does not allow aftergrowth tuning and also limits the electromechanical response. In contrast, freestanding membranes, which are free of substrate constraints, enable the tuning of a subtle balance between elastic and electrostatic energies, giving new platforms for enhanced and tunable functionalities. Here, highly tunable piezoelectricity is demonstrated in freestanding PbTiO3 membranes, by varying the ferroelectric domain structures from c-dominated to c/a and a domains via aftergrowth thermal treatment. Significantly, the piezoelectric coefficient of the c/a domain structure is enhanced by a factor of 2.5 compared with typical c domain PbTiO3. This work presents a new strategy to manipulate the piezoelectricity in ferroelectric membranes, highlighting their great potential for nano actuators, transducers, sensors and other NEMS device applications.
ISSN:1530-6984
1530-6992
DOI:10.1021/acs.nanolett.3c00096