TY - JOUR
T1 - Microwave Absorption Performance of SiC/ZrC/SiZrOC Hybrid Nanofibers with Enhanced High-Temperature Oxidation Resistance
AU - Huo, Yashan
AU - Zhao, Kang
AU - Miao, Peng
AU - Kong, Jie
AU - Xu, Zhuoli
AU - Wang, Kai
AU - Li, Fuping
AU - Tang, Yufei
N1 - Publisher Copyright:
© 2020 American Chemical Society.
PY - 2020/7/20
Y1 - 2020/7/20
N2 - In carbide ceramics, ZrC has a high melting point, high hardness, and excellent thermal conductivity and electrical conductivity. It can be used as a suitable additive phase for SiC nanomaterials to enhance its high-temperature resistance to oxidation and its microwave absorption property. In our work, heterogeneous SiC/ZrC/SiZrOC hybrid nanofibers with different ZrC contents are prepared using polycarbosilane and zirconium acetylacetonate as raw materials through electrospinning and high-temperature pyrolysis processes. With an increase in the ZrC content from 0 to 10 wt %, the electrical conductivity of the hybrid nanofibers increases from 0.3448 to 2.5676 S/cm, and the average diameter decreases from 800 to 200 nm. The SiC/ZrC/SiZrOC hybrid nanofibers result in improved microwave-absorbing capability with a minimum reflection loss of about -40.38 dB at 14.1 GHz, a thickness of 4 mm, and antioxidant properties at 600 °C. These results prove that the heterogeneous SiC/ZrC/SiZrOC hybrid nanofibers have reasonable electrical conductivity. This results in dielectric loss, which is mainly because of the added ZrC. The dipole polarization, interfacial polarization, quarter-wave cancellation, and conductivity loss are the main reasons for the enhanced microwave absorption.
AB - In carbide ceramics, ZrC has a high melting point, high hardness, and excellent thermal conductivity and electrical conductivity. It can be used as a suitable additive phase for SiC nanomaterials to enhance its high-temperature resistance to oxidation and its microwave absorption property. In our work, heterogeneous SiC/ZrC/SiZrOC hybrid nanofibers with different ZrC contents are prepared using polycarbosilane and zirconium acetylacetonate as raw materials through electrospinning and high-temperature pyrolysis processes. With an increase in the ZrC content from 0 to 10 wt %, the electrical conductivity of the hybrid nanofibers increases from 0.3448 to 2.5676 S/cm, and the average diameter decreases from 800 to 200 nm. The SiC/ZrC/SiZrOC hybrid nanofibers result in improved microwave-absorbing capability with a minimum reflection loss of about -40.38 dB at 14.1 GHz, a thickness of 4 mm, and antioxidant properties at 600 °C. These results prove that the heterogeneous SiC/ZrC/SiZrOC hybrid nanofibers have reasonable electrical conductivity. This results in dielectric loss, which is mainly because of the added ZrC. The dipole polarization, interfacial polarization, quarter-wave cancellation, and conductivity loss are the main reasons for the enhanced microwave absorption.
KW - dielectric loss
KW - electrospinning
KW - oxidation resistance
KW - polarization
KW - SiC/ZrC/SiZrOC hybrid nanofiber
UR - http://www.scopus.com/inward/record.url?scp=85089265165&partnerID=8YFLogxK
U2 - 10.1021/acssuschemeng.0c02789
DO - 10.1021/acssuschemeng.0c02789
M3 - 文章
AN - SCOPUS:85089265165
SN - 2168-0485
VL - 8
SP - 10490
EP - 10501
JO - ACS Sustainable Chemistry and Engineering
JF - ACS Sustainable Chemistry and Engineering
IS - 28
ER -