Transparent ferroelectric crystals with ultrahigh piezoelectricity

被引:0
|
作者
Chaorui Qiu
Bo Wang
Nan Zhang
Shujun Zhang
Jinfeng Liu
David Walker
Yu Wang
Hao Tian
Thomas R. Shrout
Zhuo Xu
Long-Qing Chen
Fei Li
机构
[1] Xi’an Jiaotong University,Electronic Materials Research Laboratory (Key Lab of Education Ministry), State Key Laboratory for Mechanical Behavior of Materials and School of Electronic and Information Engineering
[2] The Pennsylvania State University,Department of Materials Science and Engineering
[3] University of Wollongong,ISEM, Australian Institute for Innovative Materials
[4] University of Warwick,Department of Physics
[5] Harbin Institute of Technology,School of Physics
[6] The Pennsylvania State University,Materials Research Institute
[7] The Pennsylvania State University,Department of Engineering Science and Mechanics
[8] The Pennsylvania State University,Department of Mathematics
来源
Nature | 2020年 / 577卷
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摘要
Transparent piezoelectrics are highly desirable for numerous hybrid ultrasound–optical devices ranging from photoacoustic imaging transducers to transparent actuators for haptic applications1–7. However, it is challenging to achieve high piezoelectricity and perfect transparency simultaneously because most high-performance piezoelectrics are ferroelectrics that contain high-density light-scattering domain walls. Here, through a combination of phase-field simulations and experiments, we demonstrate a relatively simple method of using an alternating-current electric field to engineer the domain structures of originally opaque rhombohedral Pb(Mg1/3Nb2/3)O3-PbTiO3 (PMN-PT) crystals to simultaneously generate near-perfect transparency, an ultrahigh piezoelectric coefficient d33 (greater than 2,100 picocoulombs per newton), an excellent electromechanical coupling factor k33 (about 94 per cent) and a large electro-optical coefficient γ33 (approximately 220 picometres per volt), which is far beyond the performance of the commonly used transparent ferroelectric crystal LiNbO3. We find that increasing the domain size leads to a higher d33 value for the [001]-oriented rhombohedral PMN-PT crystals, challenging the conventional wisdom that decreasing the domain size always results in higher piezoelectricity8–10. This work presents a paradigm for achieving high transparency and piezoelectricity by ferroelectric domain engineering, and we expect the transparent ferroelectric crystals reported here to provide a route to a wide range of hybrid device applications, such as medical imaging, self-energy-harvesting touch screens and invisible robotic devices.
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页码:350 / 354
页数:4
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