TY - JOUR
T1 - Tuning Piezoelectricity via Thermal Annealing at a Freestanding Ferroelectric Membrane
AU - Han, Lu
AU - Yang, Xinrui
AU - Lun, Yingzhuo
AU - Guan, Yue
AU - Huang, Futao
AU - Wang, Shuhao
AU - Yang, Jiangfeng
AU - Gu, Chenyi
AU - Gu, Zheng Bin
AU - Liu, Lisha
AU - Wang, Yaojin
AU - Wang, Peng
AU - Hong, Jiawang
AU - Pan, Xiaoqing
AU - Nie, Yuefeng
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/4/12
Y1 - 2023/4/12
N2 - 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.
AB - 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.
KW - ferroelectric perovskite oxide
KW - freestanding complex oxide
KW - lead titanate (PbTiO)
KW - molecular beam epitaxy
KW - piezoelectric
UR - http://www.scopus.com/inward/record.url?scp=85151234092&partnerID=8YFLogxK
U2 - 10.1021/acs.nanolett.3c00096
DO - 10.1021/acs.nanolett.3c00096
M3 - Article
C2 - 36961344
AN - SCOPUS:85151234092
SN - 1530-6984
VL - 23
SP - 2808
EP - 2815
JO - Nano Letters
JF - Nano Letters
IS - 7
ER -