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Size and scaling effects in barium titanate. An overview
Vincenzo Buscaglia
,
Clive A. Randall
Materials Science and Engineering
Materials Research Institute (MRI)
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Review article
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peer-review
261
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Keyphrases
Barium Titanate
100%
Size Effect
100%
Scale Effect
100%
Piezoelectric Properties
60%
Grain Size
40%
Dielectric Properties
40%
Ferroelectric Ceramics
40%
Nanoparticles
20%
Elastic Properties
20%
Dielectric Constant
20%
Grain Boundary
20%
Phase Transition
20%
Perovskite Ferroelectrics
20%
Piezoelectric Transducer
20%
Piezoelectric Actuator
20%
Dipole
20%
Electro-optic
20%
Ultrasonic
20%
Ferroelectric Domain Walls
20%
Pb(Zr,Ti)O3
20%
Multilayer Ceramic Capacitor
20%
BaTiO3 Ceramics
20%
Physical Dimension
20%
Lattice Strain
20%
Macroscopic Polarization
20%
Polar Order
20%
Thermistor
20%
Surface Atom
20%
Multiple Mechanisms
20%
Intrinsic Limits
20%
Ferroelectric Perovskites
20%
Positive Temperature Coefficient
20%
Constant Property
20%
Long-range Ordering
20%
Domain Wall Boundaries
20%
Nanoceramics
20%
Capacitor
20%
Epitaxial Thin Films
20%
Ferroelectric/ferroelastic
20%
Material Science
Grain Size
100%
Ferroelectric Material
100%
Ferroelectricity
100%
Piezoelectric Property
100%
Barium Titanate
100%
Thin Films
66%
Dielectric Property
66%
Ferroelectric Ceramics
66%
Elastic Property
33%
Permittivity
33%
Piezoelectricity
33%
Actuator
33%
Capacitor
33%
Nanoparticle
33%
Domain Wall
33%
Optical Device
33%
Grain Boundary
33%
Transducer
33%
Ceramic Capacitor
33%
Thermistor
33%