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Dopant Concentration Controls Quasi-Static Electrostrictive Strain Response of Ceria Ceramics

[Image: see text] Electromechanically active ceramic materials, piezoelectrics and electrostrictors, provide the backbone of a variety of consumer technologies. Gd- and Sm-doped ceria are ion conducting ceramics, finding application in fuel cells, oxygen sensors, and, potentially, as memristor mater...

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Autores principales: Varenik, Maxim, Nino, Juan Claudio, Wachtel, Ellen, Kim, Sangtae, Yeheskel, Ori, Yavo, Nimrod, Lubomirsky, Igor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7472436/
https://www.ncbi.nlm.nih.gov/pubmed/32702965
http://dx.doi.org/10.1021/acsami.0c07799
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author Varenik, Maxim
Nino, Juan Claudio
Wachtel, Ellen
Kim, Sangtae
Yeheskel, Ori
Yavo, Nimrod
Lubomirsky, Igor
author_facet Varenik, Maxim
Nino, Juan Claudio
Wachtel, Ellen
Kim, Sangtae
Yeheskel, Ori
Yavo, Nimrod
Lubomirsky, Igor
author_sort Varenik, Maxim
collection PubMed
description [Image: see text] Electromechanically active ceramic materials, piezoelectrics and electrostrictors, provide the backbone of a variety of consumer technologies. Gd- and Sm-doped ceria are ion conducting ceramics, finding application in fuel cells, oxygen sensors, and, potentially, as memristor materials. While optimal design of ceria-based devices requires a thorough understanding of their mechanical and electromechanical properties, reports of systematic study of the effect of dopant concentration on the electromechanical behavior of ceria-based ceramics are lacking. Here we report the longitudinal electrostriction strain coefficient (M(33)) of dense RE(x)Ce(1–x)O(2–x/2) (x ≤ 0.25) ceramic pellets, where RE = Gd or Sm, measured under ambient conditions as a function of dopant concentration within the frequency range f = 0.15–350 Hz and electric field amplitude E ≤ 0.5 MV/m. For >100 Hz, all ceramic pellets tested, independent of dopant concentration, exhibit longitudinal electrostriction strain coefficient with magnitude on the order of 10(–18) m(2)/V(2). The quasi-static (f < 1 Hz) electrostriction strain coefficient for undoped ceria is comparable in magnitude, while introducing 5 mol % Gd or 5 mol % Sm produces an increase in M(33) by up to 2 orders of magnitude. For x ≤ 0.1 (Gd)–0.15 (Sm), the Debye-type relaxation time constant (τ) is in the range 60–300 ms. The inverse relationship between dopant concentration and quasi-static electrostrictive strain parallels the anelasticity and ionic conductivity of Gd- and Sm-doped ceria ceramics, indicating that electrostriction is partially governed by ordering of vacancies and changes in local symmetry.
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spelling pubmed-74724362020-09-08 Dopant Concentration Controls Quasi-Static Electrostrictive Strain Response of Ceria Ceramics Varenik, Maxim Nino, Juan Claudio Wachtel, Ellen Kim, Sangtae Yeheskel, Ori Yavo, Nimrod Lubomirsky, Igor ACS Appl Mater Interfaces [Image: see text] Electromechanically active ceramic materials, piezoelectrics and electrostrictors, provide the backbone of a variety of consumer technologies. Gd- and Sm-doped ceria are ion conducting ceramics, finding application in fuel cells, oxygen sensors, and, potentially, as memristor materials. While optimal design of ceria-based devices requires a thorough understanding of their mechanical and electromechanical properties, reports of systematic study of the effect of dopant concentration on the electromechanical behavior of ceria-based ceramics are lacking. Here we report the longitudinal electrostriction strain coefficient (M(33)) of dense RE(x)Ce(1–x)O(2–x/2) (x ≤ 0.25) ceramic pellets, where RE = Gd or Sm, measured under ambient conditions as a function of dopant concentration within the frequency range f = 0.15–350 Hz and electric field amplitude E ≤ 0.5 MV/m. For >100 Hz, all ceramic pellets tested, independent of dopant concentration, exhibit longitudinal electrostriction strain coefficient with magnitude on the order of 10(–18) m(2)/V(2). The quasi-static (f < 1 Hz) electrostriction strain coefficient for undoped ceria is comparable in magnitude, while introducing 5 mol % Gd or 5 mol % Sm produces an increase in M(33) by up to 2 orders of magnitude. For x ≤ 0.1 (Gd)–0.15 (Sm), the Debye-type relaxation time constant (τ) is in the range 60–300 ms. The inverse relationship between dopant concentration and quasi-static electrostrictive strain parallels the anelasticity and ionic conductivity of Gd- and Sm-doped ceria ceramics, indicating that electrostriction is partially governed by ordering of vacancies and changes in local symmetry. American Chemical Society 2020-07-23 2020-09-02 /pmc/articles/PMC7472436/ /pubmed/32702965 http://dx.doi.org/10.1021/acsami.0c07799 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Varenik, Maxim
Nino, Juan Claudio
Wachtel, Ellen
Kim, Sangtae
Yeheskel, Ori
Yavo, Nimrod
Lubomirsky, Igor
Dopant Concentration Controls Quasi-Static Electrostrictive Strain Response of Ceria Ceramics
title Dopant Concentration Controls Quasi-Static Electrostrictive Strain Response of Ceria Ceramics
title_full Dopant Concentration Controls Quasi-Static Electrostrictive Strain Response of Ceria Ceramics
title_fullStr Dopant Concentration Controls Quasi-Static Electrostrictive Strain Response of Ceria Ceramics
title_full_unstemmed Dopant Concentration Controls Quasi-Static Electrostrictive Strain Response of Ceria Ceramics
title_short Dopant Concentration Controls Quasi-Static Electrostrictive Strain Response of Ceria Ceramics
title_sort dopant concentration controls quasi-static electrostrictive strain response of ceria ceramics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7472436/
https://www.ncbi.nlm.nih.gov/pubmed/32702965
http://dx.doi.org/10.1021/acsami.0c07799
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