Insights into Chemical
and Structural Order at Planar
Defects in Pb2MgWO6 Using Multislice Electron
Ptychography
Posted on 2025-01-28 - 06:33
Switchable order parameters in ferroic materials are
essential
for functional electronic devices, yet disruptions of the ordering
can take the form of planar boundaries or defects that exhibit distinct
properties from the bulk, such as electrical (polar) or magnetic (spin)
response. Characterizing the structure of these boundaries is challenging
due to their confined size and three-dimensional (3D) nature. Here,
a chemical antiphase boundary in the highly ordered double perovskite
Pb2MgWO6 is investigated using multislice electron
ptychography. The boundary is revealed to be inclined along the electron
beam direction with a finite width of chemical intermixing. Additionally,
regions at and near the boundary exhibit antiferroelectric-like displacements,
contrasting with the predominantly paraelectric matrix. Spatial statistics
and density functional theory (DFT) calculations further indicate
that despite their higher energy, chemical antiphase boundaries (APBs)
form due to kinetic constraints during growth, with extended antiferroelectric-like
distortions induced by the chemically frustrated environment in the
proximity of the boundary. The three-dimensional imaging reveals the
interplay between local chemistry and the polar environment, elucidating
the role of antiphase boundaries and their associated confined structural
distortions and offering opportunities for engineering ferroic thin
films.
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Zhu, Menglin; Xu, Michael; Yun, Yu; Wu, Liyan; Shafir, Or; Gilgenbach, Colin; et al. (2025). Insights into Chemical
and Structural Order at Planar
Defects in Pb2MgWO6 Using Multislice Electron
Ptychography. ACS Publications. Collection. https://doi.org/10.1021/acsnano.4c14833Â