Mapping octahedral tilts and polarization across a domain wall in BiFeO3 from Z-contrast scanning transmission electron microscopy image atomic column shape analysis
Oxygen octahedral tilts underpin the functionality of a large number of perovskite-based materials and heterostructures with competing order parameters. We show how a precise analysis of atomic column shapes in Z-contrast scanning transmission electron microscopy images can reveal polarization and octahedral tilt behavior across uncharged and charged domain walls in BiFeO3. This method is capable of visualizing octahedral tilts to much higher thicknesses than phase contrast imaging. We find that the octahedral tilt transition across a charged domain wall is atomically abrupt, while the associated polarization profile is diffuse (1.5−2 nm). Ginzburg−Landau theory then allows the relative contributions of polarization and the structural order parameters to the wall energy to be determined.
%0 Journal Article
%1 borisevich2010mapping
%A Borisevich, AlbinaY
%A Ovchinnikov, Oleg S
%A Chang, Hye Jung
%A Oxley, Mark P
%A Yu, Pu
%A Seidel, Jan
%A Eliseev, Eugine A
%A Morozovska, Anna N
%A Ramesh, Ramamoorthy
%A Pennycook, Stephen J
%A others,
%D 2010
%I ACS Publications
%J Acs Nano
%K BiFeO3 charged_domain_walls domain_walls experiment ferroelectric_photovoltaics theory
%N 10
%P 6071--6079
%T Mapping octahedral tilts and polarization across a domain wall in BiFeO3 from Z-contrast scanning transmission electron microscopy image atomic column shape analysis
%V 4
%X Oxygen octahedral tilts underpin the functionality of a large number of perovskite-based materials and heterostructures with competing order parameters. We show how a precise analysis of atomic column shapes in Z-contrast scanning transmission electron microscopy images can reveal polarization and octahedral tilt behavior across uncharged and charged domain walls in BiFeO3. This method is capable of visualizing octahedral tilts to much higher thicknesses than phase contrast imaging. We find that the octahedral tilt transition across a charged domain wall is atomically abrupt, while the associated polarization profile is diffuse (1.5−2 nm). Ginzburg−Landau theory then allows the relative contributions of polarization and the structural order parameters to the wall energy to be determined.
@article{borisevich2010mapping,
abstract = {Oxygen octahedral tilts underpin the functionality of a large number of perovskite-based materials and heterostructures with competing order parameters. We show how a precise analysis of atomic column shapes in Z-contrast scanning transmission electron microscopy images can reveal polarization and octahedral tilt behavior across uncharged and charged domain walls in BiFeO3. This method is capable of visualizing octahedral tilts to much higher thicknesses than phase contrast imaging. We find that the octahedral tilt transition across a charged domain wall is atomically abrupt, while the associated polarization profile is diffuse (1.5−2 nm). Ginzburg−Landau theory then allows the relative contributions of polarization and the structural order parameters to the wall energy to be determined.},
added-at = {2018-08-19T23:34:45.000+0200},
author = {Borisevich, AlbinaY and Ovchinnikov, Oleg S and Chang, Hye Jung and Oxley, Mark P and Yu, Pu and Seidel, Jan and Eliseev, Eugine A and Morozovska, Anna N and Ramesh, Ramamoorthy and Pennycook, Stephen J and others},
biburl = {https://www.bibsonomy.org/bibtex/266e7f75c05f849132b10b57ef4447e8d/skoerbel},
interhash = {5f4cd3043c6e12f2a72d244ae4688189},
intrahash = {66e7f75c05f849132b10b57ef4447e8d},
journal = {Acs Nano},
keywords = {BiFeO3 charged_domain_walls domain_walls experiment ferroelectric_photovoltaics theory},
number = 10,
pages = {6071--6079},
publisher = {ACS Publications},
timestamp = {2018-08-20T00:02:51.000+0200},
title = {Mapping octahedral tilts and polarization across a domain wall in BiFeO3 from Z-contrast scanning transmission electron microscopy image atomic column shape analysis},
volume = 4,
year = 2010
}