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Boosting Upconversion Photoluminescence and Multielectrical Properties via Er-Doping-Modulated Vacancy Control in Ba(0.85)Ca(0.15)Ti(0.9)Zr(0.1)O(3)

[Image: see text] The lead-free 0.5(Ba(0.7)Ca(0.3))TiO(3)–0.5Ba(Ti(0.8)Zr(0.2))O(3) (BCTZ) ceramics with Er doping have shown good upconversion photoluminescence (PL) and desirable optical temperature sensing properties. To bridge a relationship between the structure/intrinsic defects and properties...

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Autores principales: Liu, Chunwen, Wang, Quanlin, Wu, Xiao, Sa, Baisheng, Sun, Hailing, Luo, Laihui, Lin, Cong, Zheng, Xinghua, Lin, Tengfei, Sun, Zhimei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6648785/
https://www.ncbi.nlm.nih.gov/pubmed/31460198
http://dx.doi.org/10.1021/acsomega.9b01391
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author Liu, Chunwen
Wang, Quanlin
Wu, Xiao
Sa, Baisheng
Sun, Hailing
Luo, Laihui
Lin, Cong
Zheng, Xinghua
Lin, Tengfei
Sun, Zhimei
author_facet Liu, Chunwen
Wang, Quanlin
Wu, Xiao
Sa, Baisheng
Sun, Hailing
Luo, Laihui
Lin, Cong
Zheng, Xinghua
Lin, Tengfei
Sun, Zhimei
author_sort Liu, Chunwen
collection PubMed
description [Image: see text] The lead-free 0.5(Ba(0.7)Ca(0.3))TiO(3)–0.5Ba(Ti(0.8)Zr(0.2))O(3) (BCTZ) ceramics with Er doping have shown good upconversion photoluminescence (PL) and desirable optical temperature sensing properties. To bridge a relationship between the structure/intrinsic defects and properties of rare-earth-doped ferroelectrics, we designed and fabricated a series of BCTZ ceramics doped with 1 mol % Er(3+) by combining the first-principles calculations and experimental measurements. Theoretically, we discovered that Er can occupy both A sites (i.e., replacing Ba or Ca) and B sites (i.e., replacing Ti or Zr) in the BCTZ lattice and highlighted that the Er-doping-induced vacancy concentration decreases for both the oxygen vacancies (V(o)) and cation vacancies (V(c)). Experimentally, the enhanced PL performance and the dielectric, ferroelectric, and piezoelectric properties of the Er-doped BCTZ ceramics have been observed. Finally, the physical origin of Er-induced property enhancement in BCTZ has been elaborated according to the charge density and chemical bonding analysis. These results open up a path to investigate the effects of site substitution and vacancies on optoelectronic properties of multifunctional rare-earth-doped ferroelectrics.
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spelling pubmed-66487852019-08-27 Boosting Upconversion Photoluminescence and Multielectrical Properties via Er-Doping-Modulated Vacancy Control in Ba(0.85)Ca(0.15)Ti(0.9)Zr(0.1)O(3) Liu, Chunwen Wang, Quanlin Wu, Xiao Sa, Baisheng Sun, Hailing Luo, Laihui Lin, Cong Zheng, Xinghua Lin, Tengfei Sun, Zhimei ACS Omega [Image: see text] The lead-free 0.5(Ba(0.7)Ca(0.3))TiO(3)–0.5Ba(Ti(0.8)Zr(0.2))O(3) (BCTZ) ceramics with Er doping have shown good upconversion photoluminescence (PL) and desirable optical temperature sensing properties. To bridge a relationship between the structure/intrinsic defects and properties of rare-earth-doped ferroelectrics, we designed and fabricated a series of BCTZ ceramics doped with 1 mol % Er(3+) by combining the first-principles calculations and experimental measurements. Theoretically, we discovered that Er can occupy both A sites (i.e., replacing Ba or Ca) and B sites (i.e., replacing Ti or Zr) in the BCTZ lattice and highlighted that the Er-doping-induced vacancy concentration decreases for both the oxygen vacancies (V(o)) and cation vacancies (V(c)). Experimentally, the enhanced PL performance and the dielectric, ferroelectric, and piezoelectric properties of the Er-doped BCTZ ceramics have been observed. Finally, the physical origin of Er-induced property enhancement in BCTZ has been elaborated according to the charge density and chemical bonding analysis. These results open up a path to investigate the effects of site substitution and vacancies on optoelectronic properties of multifunctional rare-earth-doped ferroelectrics. American Chemical Society 2019-06-24 /pmc/articles/PMC6648785/ /pubmed/31460198 http://dx.doi.org/10.1021/acsomega.9b01391 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Liu, Chunwen
Wang, Quanlin
Wu, Xiao
Sa, Baisheng
Sun, Hailing
Luo, Laihui
Lin, Cong
Zheng, Xinghua
Lin, Tengfei
Sun, Zhimei
Boosting Upconversion Photoluminescence and Multielectrical Properties via Er-Doping-Modulated Vacancy Control in Ba(0.85)Ca(0.15)Ti(0.9)Zr(0.1)O(3)
title Boosting Upconversion Photoluminescence and Multielectrical Properties via Er-Doping-Modulated Vacancy Control in Ba(0.85)Ca(0.15)Ti(0.9)Zr(0.1)O(3)
title_full Boosting Upconversion Photoluminescence and Multielectrical Properties via Er-Doping-Modulated Vacancy Control in Ba(0.85)Ca(0.15)Ti(0.9)Zr(0.1)O(3)
title_fullStr Boosting Upconversion Photoluminescence and Multielectrical Properties via Er-Doping-Modulated Vacancy Control in Ba(0.85)Ca(0.15)Ti(0.9)Zr(0.1)O(3)
title_full_unstemmed Boosting Upconversion Photoluminescence and Multielectrical Properties via Er-Doping-Modulated Vacancy Control in Ba(0.85)Ca(0.15)Ti(0.9)Zr(0.1)O(3)
title_short Boosting Upconversion Photoluminescence and Multielectrical Properties via Er-Doping-Modulated Vacancy Control in Ba(0.85)Ca(0.15)Ti(0.9)Zr(0.1)O(3)
title_sort boosting upconversion photoluminescence and multielectrical properties via er-doping-modulated vacancy control in ba(0.85)ca(0.15)ti(0.9)zr(0.1)o(3)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6648785/
https://www.ncbi.nlm.nih.gov/pubmed/31460198
http://dx.doi.org/10.1021/acsomega.9b01391
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