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Fatigue anisotropy in pulsed laser deposited PYbN-PT thin films
Bornand Véronique
,
Trolier Mc Kinstry Susan
Materials Science and Engineering
Materials Research Institute (MRI)
Nanofabrication Laboratory
Research output
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Contribution to journal
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peer-review
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Keyphrases
Pulsed Laser
100%
SrRuO3
100%
Fatigue Anisotropy
100%
Heterostructure
66%
Single Crystal
33%
As-grown
33%
PbTiO3
33%
SrTiO3
33%
Perovskite
33%
Pulsed Laser Deposition
33%
Crystal Orientation
33%
Relaxor Ferroelectrics
33%
Domain Configuration
33%
Ferroelectric PbTiO3
33%
SrTiO3 Substrate
33%
Multilayer System
33%
Deposition Process
33%
Domain Switching
33%
Switching Process
33%
Orientation Dependence
33%
Bottom Electrode
33%
Fatigue-free
33%
Ferroelectric Characteristics
33%
Metallic Oxide
33%
Fatigue Characteristics
33%
Configuration Process
33%
Capacitor
33%
Ferroelectric Thin Films
33%
Switchable Polarization
33%
Epitaxial Thin Films
33%
Material Science
Thin Films
100%
Heterojunction
100%
Ferroelectric Material
100%
Capacitor
100%
Anisotropy
100%
Film
50%
Oxide Compound
50%
Pulsed Laser Deposition
50%
Crystal Orientation
50%
Ferroelectric Thin Films
50%
Multilayer
50%
Fatigue Behavior
50%
Single Crystal
50%