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research article

Structural and microstructural studies on SiC-SiO2 ceramic composites

Lee, Ho-Yun  
•
Tsui, Fu-Chieh
•
Lee, Ying-Chieh
May 15, 2019
Materials Chemistry And Physics

In this study, SiC ceramic substrates were prepared with 99.5% silicon carbide powders which were came from waste silicon mud during the manufacturing process of solar cells. It is found that a SiO2 layer with 50 nm in thickness is present on the SiC surface by TEM analysis. The relative density of the SiC samples is too low after sintering to 1550 degrees C, which is only 60% of the relative density. It will cause a poor mechanical strength at lower relative density of samples. To improve the density of SiC samples, an amorphous SiO2 was introduced as a sintering aid. Different amounts of amorphous SiO2 from 1 wt% to 5 wt% were then added into SIC powders and made into discs. We call this modified-SiC. These samples were sintered at high temperatures from 1350 degrees C to 1500 degrees C. The SiO2 addition and sintering temperature effects on the density, phase evolution, microstructure and mechanical properties of modified-SiC were investigated. A Y-ZrO2 layer was then coated onto the SiC disc. Sintering temperature can be efficiently decreased and the mismatch between ZrO2 coatings and SiC disc can be reduced when SiO2 is added into SiC. It is found that SiC powders with 3 wt% SiO2 addition shows the most optimum outcome with higher density and stronger mechanical properties.

  • Details
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Type
research article
DOI
10.1016/j.matchemphys.2019.05.064
Web of Science ID

WOS:000474500900020

Author(s)
Lee, Ho-Yun  
Tsui, Fu-Chieh
Lee, Ying-Chieh
Date Issued

2019-05-15

Published in
Materials Chemistry And Physics
Volume

233

Start page

203

End page

212

Subjects

Materials Science, Multidisciplinary

•

Materials Science

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sic-sio2 composites

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amorphous sio2

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sio2 crystalline

•

y-zro2

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co-firing

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silicon-carbide

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dielectric-properties

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zirconia

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fabrication

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stability

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expansion

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toughness

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oxide

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sio2

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
IMX  
Available on Infoscience
July 20, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/159253
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