Phase stability, electronic and local structures of Li-doped (K,Na)NbO<inf>3</inf> under hydrostatic pressure from first principles calculation

Despite the promising potential to replace Pb-based ferroelectric materials, potassium sodium niobate-based ceramics retain one critical drawback, namely, the temperature sensitivity which is considered the most challenging in practical applications. It has been proposed that the formation of a phas...

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Main Author: Metta P.
Other Authors: Mahidol University
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Published: 2023
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Online Access:https://repository.li.mahidol.ac.th/handle/123456789/81742
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spelling th-mahidol.817422023-05-19T14:38:06Z Phase stability, electronic and local structures of Li-doped (K,Na)NbO<inf>3</inf> under hydrostatic pressure from first principles calculation Metta P. Mahidol University Chemistry Despite the promising potential to replace Pb-based ferroelectric materials, potassium sodium niobate-based ceramics retain one critical drawback, namely, the temperature sensitivity which is considered the most challenging in practical applications. It has been proposed that the formation of a phase boundary rhombohedral–tetragonal (R–T) can stabilize the temperature dependence of this material. External factors such as thermal, electrical, magnetic and mechanical fields can induce structural phase transition and influence the piezoelectric and ferroelectric responses. In this study, the electronic and local structures of (Li,Na,K)NbO3 (KNLN) under hydrostatic pressure were investigated using first principles calculations within the generalized-gradient approximation. It is revealed that the internal stress presented in the KNLN ceramic due to the ionic size difference among the A-cation favors the formation of the tetragonal phase in ambient conditions. When the material is subjected to external pressure, the denser orthorhombic phase is more preferable at around 5.85 GPa and the rhombohedral phase at around 7.20 GPa. The bond strength and bandgap decrease, because the electronic charge density and electronic interaction are amplified. In addition, we observed the octahedral rotation signifying the lattice distortion for the tetragonal phase, while the inter-plane tilting takes over in other phases at high pressure. 2023-05-19T07:38:06Z 2023-05-19T07:38:06Z 2023-04-01 Article Applied Physics A: Materials Science and Processing Vol.129 No.4 (2023) 10.1007/s00339-023-06520-5 14320630 09478396 2-s2.0-85150865192 https://repository.li.mahidol.ac.th/handle/123456789/81742 SCOPUS
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Chemistry
spellingShingle Chemistry
Metta P.
Phase stability, electronic and local structures of Li-doped (K,Na)NbO<inf>3</inf> under hydrostatic pressure from first principles calculation
description Despite the promising potential to replace Pb-based ferroelectric materials, potassium sodium niobate-based ceramics retain one critical drawback, namely, the temperature sensitivity which is considered the most challenging in practical applications. It has been proposed that the formation of a phase boundary rhombohedral–tetragonal (R–T) can stabilize the temperature dependence of this material. External factors such as thermal, electrical, magnetic and mechanical fields can induce structural phase transition and influence the piezoelectric and ferroelectric responses. In this study, the electronic and local structures of (Li,Na,K)NbO3 (KNLN) under hydrostatic pressure were investigated using first principles calculations within the generalized-gradient approximation. It is revealed that the internal stress presented in the KNLN ceramic due to the ionic size difference among the A-cation favors the formation of the tetragonal phase in ambient conditions. When the material is subjected to external pressure, the denser orthorhombic phase is more preferable at around 5.85 GPa and the rhombohedral phase at around 7.20 GPa. The bond strength and bandgap decrease, because the electronic charge density and electronic interaction are amplified. In addition, we observed the octahedral rotation signifying the lattice distortion for the tetragonal phase, while the inter-plane tilting takes over in other phases at high pressure.
author2 Mahidol University
author_facet Mahidol University
Metta P.
format Article
author Metta P.
author_sort Metta P.
title Phase stability, electronic and local structures of Li-doped (K,Na)NbO<inf>3</inf> under hydrostatic pressure from first principles calculation
title_short Phase stability, electronic and local structures of Li-doped (K,Na)NbO<inf>3</inf> under hydrostatic pressure from first principles calculation
title_full Phase stability, electronic and local structures of Li-doped (K,Na)NbO<inf>3</inf> under hydrostatic pressure from first principles calculation
title_fullStr Phase stability, electronic and local structures of Li-doped (K,Na)NbO<inf>3</inf> under hydrostatic pressure from first principles calculation
title_full_unstemmed Phase stability, electronic and local structures of Li-doped (K,Na)NbO<inf>3</inf> under hydrostatic pressure from first principles calculation
title_sort phase stability, electronic and local structures of li-doped (k,na)nbo<inf>3</inf> under hydrostatic pressure from first principles calculation
publishDate 2023
url https://repository.li.mahidol.ac.th/handle/123456789/81742
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