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Reducing Coercive-Field Scaling in Ferroelectric Thin Films via Orientation Control.

Authors :
Xu R
Gao R
Reyes-Lillo SE
Saremi S
Dong Y
Lu H
Chen Z
Lu X
Qi Y
Hsu SL
Damodaran AR
Zhou H
Neaton JB
Martin LW
Source :
ACS nano [ACS Nano] 2018 May 22; Vol. 12 (5), pp. 4736-4743. Date of Electronic Publication: 2018 Apr 16.
Publication Year :
2018

Abstract

The desire for low-power/voltage operation of devices is driving renewed interest in understanding scaling effects in ferroelectric thin films. As the dimensions of ferroelectrics are reduced, the properties can vary dramatically, including the robust scaling relationship between coercive field ( E <subscript>c</subscript> ) and thickness ( d), also referred to as the Janovec-Kay-Dunn (JKD) law, wherein E <subscript>c</subscript> ∝ d <superscript>-2/3</superscript> . Here, we report that whereas (001)-oriented heterostructures follow JKD scaling across the thicknesses range of 20-330 nm, (111)-oriented heterostructures of the canonical tetragonal ferroelectric PbZr <subscript>0.2</subscript> Ti <subscript>0.8</subscript> O <subscript>3</subscript> exhibit a deviation from JKD scaling wherein a smaller scaling exponent for the evolution of E <subscript>c</subscript> is observed in films of thickness ≲ 165 nm. X-ray diffraction reveals that whereas (001)-oriented heterostructures remain tetragonal for all thicknesses, (111)-oriented heterostructures exhibit a transition from tetragonal-to-monoclinic symmetry in films of thickness ≲ 165 nm as a result of the compressive strain. First-principles calculations suggest that this symmetry change contributes to the deviation from the expected scaling, as the monoclinic phase has a lower energy barrier for switching. This structural evolution also gives rise to changes in the c/ a lattice parameter ratio, wherein this ratio increases and decreases in (001)- and (111)-oriented heterostructures, respectively, as the films are made thinner. In (111)-oriented heterostructures, this reduced tetragonality drives a reduction of the remanent polarization and, therefore, a reduction of the domain-wall energy and overall energy barrier to switching, which further exacerbates the deviation from the expected scaling. Overall, this work demonstrates a route toward reducing coercive fields in ferroelectric thin films and provides a possible mechanism to understand the deviation from JKD scaling.

Details

Language :
English
ISSN :
1936-086X
Volume :
12
Issue :
5
Database :
MEDLINE
Journal :
ACS nano
Publication Type :
Academic Journal
Accession number :
29641177
Full Text :
https://doi.org/10.1021/acsnano.8b01399