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Giant Electrostriction Enabled by Defect-Induced Critical Phenomena in Relaxor Ferroelectric Polymers
Xin Chen
, Hancheng Qin
, Wenyi Zhu
, Bing Zhang
, Wenchang Lu
, J. Bernholc
,
Q. M. Zhang
Electrical Engineering
Materials Research Institute (MRI)
Research output
:
Contribution to journal
›
Article
›
peer-review
21
Scopus citations
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Keyphrases
Relaxor Ferroelectric Polymers
100%
Defect-induced
100%
Giant Electrostriction
100%
Electric Field (E-field)
60%
Ultra-low
40%
P(VDF-TrFE)
40%
Transition Region
20%
Small Changes
20%
Relaxor Ferroelectrics
20%
Terpolymer
20%
Molecular Conformation
20%
Energy Barrier
20%
Electromechanical Response
20%
Shape Change
20%
Ferroelectric Polymer
20%
Relaxor Behavior
20%
Vinylidene
20%
Microscopic Origin
20%
Electric Stimulation
20%
Engineering
Relaxor Ferroelectrics
100%
Ferroelectric Polymers
100%
Induced Defect
100%
Electric Field
100%
Mols
33%
Energy Barrier
33%
Shape Change
33%
Endpoint
33%
Material Science
Ferroelectric Material
100%
Electrostriction
100%