TY - JOUR
T1 - The stabilization of a single domain in free-standing ferroelectric nanocrystals
AU - Szwarcman, Daniel
AU - Prosandeev, S.
AU - Louis, Lydie
AU - Berger, Shlomo
AU - Rosenberg, Yuri
AU - Lereah, Yossi
AU - Bellaiche, L.
AU - Markovich, Gil
PY - 2014/3/26
Y1 - 2014/3/26
N2 - High resolution electron microscopy, electron diffraction and electron holography were used to study individual free-standing ∼30 nm barium titanate nanocrystals. Large unidirectional variations in the tetragonal distortion were mapped across the smaller nanocrystals, peaking to anomalously large values of up to 4% at the centers of the nanocrystals. This indicated that the nanocrystals consist of highly strained single ferroelectric domains. Simulations using an effective Hamiltonian for modeling a nanocrystal under a small depolarizing field and negative pressure qualitatively confirm this picture. These simulations, along with the development of a phenomenological model, show that the tetragonal distortion variation is a combined effect of: (i) electrostrictive coupling between the spontaneous polarization and strain inside the nanocrystal, and (ii) a surface-induced effective stress existing inside the nanodot. As a result, a 'strain skin layer', having a smaller tetragonal distortion relative to the core of the nanocrystal, is created.
AB - High resolution electron microscopy, electron diffraction and electron holography were used to study individual free-standing ∼30 nm barium titanate nanocrystals. Large unidirectional variations in the tetragonal distortion were mapped across the smaller nanocrystals, peaking to anomalously large values of up to 4% at the centers of the nanocrystals. This indicated that the nanocrystals consist of highly strained single ferroelectric domains. Simulations using an effective Hamiltonian for modeling a nanocrystal under a small depolarizing field and negative pressure qualitatively confirm this picture. These simulations, along with the development of a phenomenological model, show that the tetragonal distortion variation is a combined effect of: (i) electrostrictive coupling between the spontaneous polarization and strain inside the nanocrystal, and (ii) a surface-induced effective stress existing inside the nanodot. As a result, a 'strain skin layer', having a smaller tetragonal distortion relative to the core of the nanocrystal, is created.
KW - domains
KW - ferroelectricity
KW - nanostructures
UR - https://www.scopus.com/pages/publications/84896787603
U2 - 10.1088/0953-8984/26/12/122202
DO - 10.1088/0953-8984/26/12/122202
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AN - SCOPUS:84896787603
SN - 0953-8984
VL - 26
JO - Journal of Physics Condensed Matter
JF - Journal of Physics Condensed Matter
IS - 12
M1 - 122202
ER -