Synthesis of Silicon Carbide Powders from Methyl-Modified Silica Aerogels

被引:8
|
作者
Lee, Kyoung-Jin [1 ]
Kang, Yanggu [1 ,2 ]
Kim, Young Hun [3 ]
Baek, Se Won [3 ]
Hwang, Haejin [1 ]
机构
[1] Inha Univ, Dept Mat Sci & Engn, 100 Inha Ro, Incheon 22212, South Korea
[2] KOMEX, Ansung 17604, Gyeonggi, South Korea
[3] LG Chem, Basic Mat & Chem R&D, 188 Munji Ro, Daejeon 34122, South Korea
来源
APPLIED SCIENCES-BASEL | 2020年 / 10卷 / 18期
关键词
silicon carbide (SiC); silica (SiO2); aerogel; surface methyl (-CH3) group; carbothermal reduction; CARBOTHERMAL REDUCTION; MECHANICAL-PROPERTIES; CARBON; TEMPERATURE; PRECURSOR; GROWTH; PHASE; POLYCARBOSILANE; MICROSTRUCTURE; CERAMICS;
D O I
10.3390/app10186161
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
beta-silicon carbide (SiC) powders were synthesized by the carbothermal reduction of methyl-modified silica aerogel/carbon mixtures. The correlations between the phase evolution and morphologies of the SiC powders and the C/SiO(2)ratio were investigated. At a C/SiO(2)ratio of 3, beta-SiC formed at 1425 degrees C and single-phase SiC powders were obtained at 1525 degrees C. The methyl groups (-CH3) on the silica aerogel surfaces played important roles in the formation of SiC during the carbothermal reduction. SiC could be synthesized from the silica aerogel/carbon mixtures under lower temperature and C/SiO(2)ratios than those needed for quartz or hydrophilic silica. The morphology of the SiC powder depended on the C/SiO(2)ratio. A low C/SiO(2)ratio resulted in beta-SiC powder with spherical morphology, while agglomerates consisting of fine SiC particles were obtained at the C/SiO(2)ratio of 3. High-purity SiC powder (99.95%) could be obtained with C/SiO2= 0.5 and 3 at 1525 degrees C for 5 h.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] Synthesis of silica aerogels from waterglass via new modified ambient drying
    Lee, CJ
    Kim, GS
    Hyun, SH
    JOURNAL OF MATERIALS SCIENCE, 2002, 37 (11) : 2237 - 2241
  • [42] Carbon dioxide laser synthesis of ultrafine silicon carbide powders from diethoxydimethylsilane
    Li, Ya-Li, 1662, American Ceramic Soc, Westerville, OH, United States (77):
  • [43] Chemically-assisted combustion synthesis of silicon carbide from elemental powders
    Puszynski, JA
    Miao, SX
    INNOVATIVE PROCESSING AND SYNTHESIS OF CERAMICS, GLASSES, AND COMPOSITES II, 1999, 94 : 13 - 21
  • [44] Synthesis of β-silicon carbide nanofiber from an exfoliated graphite and amorphous silica
    Hwang, Hae Jin
    Lee, Kyoung-Jin
    An, Yong-Tae
    Choi, Byung-Hyun
    Seo, Won-Seon
    MATERIALS CHEMISTRY AND PHYSICS, 2012, 134 (01) : 13 - 15
  • [45] Synthesis and characterization of submicron silicon carbide powders with silicon and phenolic resin
    Shi, Limin
    Zhao, Hongsheng
    Yan, Yinghui
    Li, Ziqiang
    Tang, Chunhe
    POWDER TECHNOLOGY, 2006, 169 (02) : 71 - 76
  • [46] LASER SYNTHESIS OF SILICON-CARBIDE POWDERS FROM SILANE AND HYDROCARBON MIXTURES
    CAUCHETIER, M
    CROIX, O
    LUCE, M
    ADVANCED CERAMIC MATERIALS, 1988, 3 (06): : 548 - 552
  • [47] Low-temperature synthesis of aluminum silicon carbide using ultrafine aluminum carbide and silicon carbide powders
    Hasegawa, M
    Itatani, K
    Aizawa, M
    Howell, FS
    Kishioka, A
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1996, 79 (01) : 275 - 278
  • [48] Effect of silica sources on nanostructures of resorcinol-formaldehyde/silica and carbon/silicon carbide composite aerogels
    Kong, Yong
    Zhong, Ya
    Shen, Xiaodong
    Cui, Sheng
    Fan, Maohong
    MICROPOROUS AND MESOPOROUS MATERIALS, 2014, 197 : 77 - 82
  • [49] A Methyl-Modified Silica Layer Supported on Porous Ceramic Membranes for the Enhanced Separation of Methyl Tert-Butyl Ether from Aqueous Solution
    Xu, Ligang
    Wang, Yali
    Li, Qunyan
    Cui, Suping
    Tang, Mingxue
    Nie, Zuoren
    Wei, Qi
    MEMBRANES, 2022, 12 (05)
  • [50] Enhancement of CH4-water mass transfer using methyl-modified mesoporous silica nanoparticles
    Sung-Yeob Lee
    Kyo-Sung Mo
    Jin-Ha Choi
    Nam Hwi Hur
    Young-Kee Kim
    Byung-Keun Oh
    Jinwon Lee
    Korean Journal of Chemical Engineering, 2015, 32 : 1744 - 1748