Room temperature plasticity of zirconia-yttria-titania ceramics: Experimental indications and structural modelling
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Published:2022
Issue:4
Volume:16
Page:367-373
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ISSN:1820-6131
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Container-title:Processing and Application of Ceramics
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language:en
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Short-container-title:PAC
Author:
Ussui Valter1, Lazar Dolores Ribeiro1, de Lima Nelson1, Arata Anelyse2, Ribeiro Fabio1, Dalpian Gustavo2, Marchi Juliana1, Paschoal José Octavio2
Affiliation:
1. Instituto de Pesquisas Energéticas e Nucleares (IPEN/CNEN), Cidade Universitária, São Paulo, Brazil 2. Instituto de Pesquisas Energéticas e Nucleares (IPEN/CNEN), Cidade Universitária, São Paulo, Brazil + Centro de Ciências Naturais e Humanas (CCNH), Universidade Federal do ABC (UFABC), Santo André, São Paulo, Brazil
Abstract
Yttria-stabilized tetragonal zirconia (Y-TZP) ceramics have excellent
mechanical properties. However, such materials cannot undergo plastic
deformation at room temperature due to their high hardness and brittleness
values, hindering machinability. To overcome these limitations, we propose a
zirconia-yttria-titania ceramics, based on zirconia containing 3mol% yttria
and up to 15mol% titania. The zirconia-yttria-titania powders were
synthesized by co-precipitation method, uniaxially pressed and sintered at
1400?C/5 h. Sample characterizations were carried out by X-ray diffraction,
scanning electron microscopy and mechanical properties through Vickers
hardness and toughness measurements. Compared to the Y-TZP ceramics, the
yttria stabilised tetragonal zirconia ceramics co-doped with 10mol%Ti showed
noticeable increase of tetragonality parameter, higher toughness and lower
hardness values, indicating plasticity at room temperature. Furthermore, the
atomistic simulation by Density Functional Theory methodology suggests the
occurrence of spatial arrangement of the atoms, explaining the proposed
plasticity.
Publisher
National Library of Serbia
Subject
Ceramics and Composites
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