2020
DOI: 10.1002/admi.202000555
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Direct Observation of Large Atomic Polar Displacements in Epitaxial Barium Titanate Thin Films

Abstract: The development of ferroelectric perovskite oxides having a controlled polarization direction is an ongoing and challenging topic of research. Here we report direct observation of large atomic polar displacements, which correspond to a polar density of ~0.9C m -2 pointing upwards, in an epitaxial BaTiO 3 (BTO) film grown by molecular beam epitaxy on a SrTiO 3 substrate. Aberration-corrected scanning transmission electron microscopy is used to map the polarization displacement with unit-cell resolution. Oxygen … Show more

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Cited by 13 publications
(11 citation statements)
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“…Further investigation is required to fully understand this phenomenon, which could be similar to the interface effects recently reported by other groups. [ 53,54 ] However, for the rest of the sample volume, these results are in line with a gradient of lead oxide dipolar vacancies inducing a gradient in polarization, which leads to a gradient in strain.…”
Section: Discussionmentioning
confidence: 65%
“…Further investigation is required to fully understand this phenomenon, which could be similar to the interface effects recently reported by other groups. [ 53,54 ] However, for the rest of the sample volume, these results are in line with a gradient of lead oxide dipolar vacancies inducing a gradient in polarization, which leads to a gradient in strain.…”
Section: Discussionmentioning
confidence: 65%
“…Fig. 4(b)] corresponds to P r = 0.6 mC/cm 2 of the BTO thin film -a higher value than typical polarization values of epitaxial BTO films, which are in the range below 0.1 mC/cm 2 [34]. We identified two possible causes for this observation.…”
Section: B Device Characterizationmentioning
confidence: 76%
“…Various ferroelectric materials, such as PVDF-TrFE [ 8 ], Pb(Zr,Ti)O 3 [ 11 ], BiFeO 3 , Bi 2 FeCrO 6 , BTO, LiNbO 3 [ 12 ], Be x Cd y Zn 1- x - y O, PbTiO 3 , and Pb (1- x ) La x ZrTiO 3 [ 13 ], have been applied to enhance the internal electric field of a solar cell by the combination of the ferroelectric depolarization field with the p - n junction field. Among these ferroelectric materials, BTO shows superior properties of a wide bandgap ( E g ~ 3.4 eV), room-temperature ferroelectricity ( T c ~ 120 °C), substantial remnant polarization ( P r = 0.5 C/m 2 ), environmental-friendly advantage, easy fabrication, excellent stability, and so on [ 14 , 15 , 16 , 17 , 18 , 19 , 20 ]. The internal electric field of a solar cell is expected to be significantly enhanced by the insertion of a BTO ferroelectric layer into the device.…”
Section: Introductionmentioning
confidence: 99%