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Ultra-low thermal conductivity and enhanced mechanical properties of high-entropy perovskite ceramics
At present, the research on high-entropy perovskite materials mainly focuses on electrical properties. When they are employed in high-temperature and high-pressure environments, the stability of their working performance is extremely important, but the research on them is very limited. A novel entro...
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Published in: | Journal of materials chemistry. C, Materials for optical and electronic devices Materials for optical and electronic devices, 2024-11, Vol.12 (43), p.17687-17694 |
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Main Authors: | , , , , , , , , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites |
Online Access: | Get full text |
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Summary: | At present, the research on high-entropy perovskite materials mainly focuses on electrical properties. When they are employed in high-temperature and high-pressure environments, the stability of their working performance is extremely important, but the research on them is very limited. A novel entropy-stabilized ceramic system, denoted as Ba(Zr
0.2
Ti
0.2
Sn
0.2
Hf
0.2
X
0.2
)O
3
(X = Nb
5+
, Ta
5+
), featuring a disordered perovskite structure, was synthesized. The high entropy ceramic, Ba(Zr
0.2
Ti
0.2
Sn
0.2
Hf
0.2
Ta
0.2
)O
3
(abbreviated as HEC-Ta), manifests a thermal expansion coefficient (9.00 × 10
−6
K
−1
at 1400 °C). It exhibits exceptional thermal stability within the range of 30 to 1400 °C, coupled with low thermal conductivity (1.97 W m
−1
K
−1
at 1200 °C) and superior mechanical properties (
H
v
= 10.96 GPa,
E
= 178.28 GPa). These properties are ascribed to a high degree of lattice distortion arising from the stochastic distribution of different cations, along with the high entropy cocktail effect, leading to increased phonon scattering. This study thus presents a novel approach to develop a ceramic material devoid of rare earth elements, and can be enlightened for the application of perovskite materials in high temperature environments.
A novel entropy-stabilized ceramic system featuring a disordered perovskite structure manifests low thermal conductivity and superior mechanical properties. |
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ISSN: | 2050-7526 2050-7534 |
DOI: | 10.1039/d4tc03278k |