• Title/Summary/Keyword: 폴리카보실란

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Structural behavior of polyphenylcarbosilane through pyrolysis process

  • Lee, Yun-Ju;Kim, Yeong-Hui;Kim, Jong-Il;Kim, Su-Ryong;Gwon, U-Taek
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2012.05a
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    • pp.94.1-94.1
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    • 2012
  • 폴리페닐카보실란은 페닐그룹을 포함하고 있는 카보실란계 고분자로서 열분해 후 과량의 탄소를 함유할 수 있는 세라믹 전구체이다. 카보실란계열의 고분자는 산화특성이 있어 SiOC 코팅 용도에도 사용되고 있는데, 폴리페닐카보실란은 free 탄소를 함유하는 SiOC:C 필름을 형성할 수 있다. SiOC 코팅 전구체로는 일반적으로 실리카졸, 실라잔 계열의 고분자, 실록산 계열의 고분자가 사용되고 있으나, 폴리페닐카보실란의 경우 상기 전구체에 비하여 보관 안정성 및 뛰어난 부착특성을 나타낸다. 기존 연구에서는 폴리페닐카보실란으로부터 형성된 SiOC:C 필름의 저유전막, 산화방지막, 분진방지막 등의 응용성에 대하여 고찰한 바 있다. 폴리페닐카보실란은 열처리 온도 영역에 따라 응용 분야가 달라질 수 있는데, 이에 본 연구에서는 각 열처리 온도 영역에 따라 형성되는 SiOC:C 필름의 구조적 변화를 고찰하였다. 필름 형성은 20 % 폴리카보실란 용액을 스핀코팅하고 대기상에서 경화를 실시하였으며, 질소 분위기에서 400 ~ 1200 도 범위에서 열처리하였다. 이렇게 얻어진 300 nm 두께의 필름은 XPS 표면분석과 FT-IR, Solid-NMR을 이용하여 C-Si-O 네트워크 형성의 거동을 확인하였으며, 800 도 이상에서 나타나는 특징적인 free 탄소는 Raman을 이용하여 확인하였다.

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Thermal and Rheological Characterizations of Polycarbosilane Precursor by Solvent Treatment (폴리카보실란 전구체의 용매 처리에 따른 열적 및 유변학적 특성 분석)

  • Song, Yeeun;Joo, Young Jun;Shin, Dong Geun;Cho, Kwang Youn;Lee, Doojin
    • Composites Research
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    • v.35 no.1
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    • pp.23-30
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    • 2022
  • Polycarbosilane(PCS) is an important precursor for melt-spinning the silicon carbide(SiC) fibers and manufacturing ceramics. The PCS is a metal-organic polymer precursor capable of producing continuous SiC fibers having excellent performance such as high-temperature resistance and oxidation resistance. The SiC fibers are manufactured through melt-spinning, stabilization, and heat treatment processes using the PCS manufactured by synthesis, purification, and control of the molecular structure. In this paper, we analyzed the effect of purification of unreacted substances and low molecular weight through solvent treatment of PCS and the effect of heat treatment at various temperatures change the polymerization and network rearrangement of PCS. Especially, we investigated the complex viscosity and structural arrangement of PCS precursors according to solvent treatment and heat treatment through the rheological properties.

Preceramic Polymer Technology for High Temperature Ceramic Composite and its Application (초고온복합소재용 프리세라믹폴리머 합성 및 응용기술)

  • Lee, Yoonjoo;Kim, Younghee;Bae, Seong Gun;Lee, Hyeon Myoung;Cho, Kwang Youn;Kwon, Woo Teck;Kim, Soo Ryong;Riu, Doh Hyung;Shin, Dong Geun
    • Composites Research
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    • v.30 no.2
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    • pp.102-107
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    • 2017
  • The preceramic polymer can realize a variety of complex ceramic structures that can not be obtained by conventional ceramic processes. Polycarbosilane, which is a typical preceramic polymer, can control the molecular structure, molecular weight and molecular weight distribution for preparing complex morphology and microstructure of SiC ceramics, including SiC fiber. In this paper, synthesis and molecular structure control technique of polycarbosilane is explained. The silicon carbide fiber prepared by melt spinning, stabilization and heat treatment, and ceramic fiber composites technology made by PIP process are also discussed. In addition, we introduce an example of the development of a complex silicon carbide material such as a silicon carbide hollow fiber having a nanoporous structure.

Development of Pilot-Scale Manufacturing Process of SiC Fiber from Polycarbosilane Precursor with Excellent Mechanical Property at Highly Oxidation Condition and High Temperature (폴리카보실란 전구체로부터 고온 산화성분위기서 기계적물성이 우수한 파이롯-규모의 탄화규소섬유 제조공정 개발)

  • Yoon, B.I.;Choi, W.C.;Kim, J.I.;Kim, J.S.;Kang, H.G.;Kim, M.J.
    • Composites Research
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    • v.30 no.2
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    • pp.116-125
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    • 2017
  • The purpose of this study is to develop silicon carbide fiber showing an excellent mechanical properties under highly oxidative conditions at high temperature. Polycarbosilane(PCS) as a preceramic precursor was used for making the SiC fiber. PCS fiber was taken by melt spinning method followed by melting the PCS at $300{\sim}350^{\circ}C$ in N2 gas. The Curing of PCS fiber was carried out in air oxygen chamber, prior to high temperature pyrolysis. Degree of cure was calculated by characteristic peak's ratio of Si-H to $Si-CH_3$ in FT-IR spectra before and after curing of PCS fiber. The properties of SiC fiber was affected greatly by the degree of cure. The SiC fiber produced by controlling fiber tension during heat treatment showed good properties. The SiC fiber exposed to $1000^{\circ}C$ at air from 1 min. up to maximum 50 hrs showed around 60% reduction in tensile strength. We found that large amount of carbon content on the fiber surface after long-term exposure has resulted in lower tensile strength.

Fabrication and Characterization of C/SiC Composite by Electron Beam Curing (전자선 가교 방법을 이용한 탄소/탄화규소 복합재 제조 및 특성)

  • Shin, Jin-Wook;Jeun, Joon-Pyo;Kang, Phil-Hyun
    • Polymer(Korea)
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    • v.33 no.6
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    • pp.575-580
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    • 2009
  • Carbon fabric-reinforced silicon carbide composites (C/SiC) have attracted a considerable attention for high temperature structural application because of their outstanding oxidation resistance property and thermal shock resistance. In this study, we reported on the preparation of C/SiC composites by the polymer impregnation and pyrolysis (PIP) method. For this, polycarbosilane solution was impregnated into the carbon fabric and then cured by electron beam irradiation under argon atmosphere. Afterwards, the cured composite was pyrolyzed at $1300^{\circ}C$ for 1 h under argon atmosphere to produce the C/SiC composite. The porosity and density of the C/SiC composite were 13.5% and $2.44\;g/cm^3$, respectively, when the impregnation of the carbon fabric with the 30 wt% polycarbosilane solution conducted four times. In addition, in the isothermal experiment at $1500\;^{\circ}C$ in air for 5 h, the 95.9 wt% of the C/SiC composite was remained, indicating that the prepared C/SiC composite has a outstanding oxidation resistance.

The Preparation of Non-Silicone Oil Based Adhesion Promoted Silicone Sealant (비실리콘 오일을 BASE로 한 접착력 강화 실리콘 실란트의 제조 개발)

  • Han, Gil-Soo;Jeong, Kyoung-Han;Chun, Yong-Jin
    • Proceedings of the KAIS Fall Conference
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    • 2008.05a
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    • pp.309-312
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    • 2008
  • We have prepared the silicone sealant using non silicone oil without silicone oil for solvent and using adhesion promotor against various substrate. We are replaced the silicone oil by the mineral oil and the normal adhesion promotor by mixed adhesion promotor at the multi purpose silicone sealant.

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Study on the Improved Abrasion Resistance of Polycarbonate Substrate by UV-curable Organic/Inorganic Hybrid Coatings (자외선 경화형 유기/무기 복합코팅에 의한 폴리카보네이트의 내마모성 향상 연구)

  • 윤석은;우희권;김동표
    • Polymer(Korea)
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    • v.24 no.3
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    • pp.389-398
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    • 2000
  • Transparent, abrasion resistant coatings with 4~13 ${\mu}{\textrm}{m}$ thickness were prepared by spin-coating on polycarbonates with organic/inorganic hybrid solutions, followed by UV curing and heat treatment at 12$0^{\circ}C$ for 12 hours. The coating solutions were composed of inorganic phase and organic phase in 0:100, 20:80, 30:70, 50:50, 80:20 wt% ratios, respectively, mixed with photoinitiator, senaitizer and surfactant. The inorganic phase was formed by sol-gel reaction of TEOS and silane coupling agent MPTMS in 1 : 2 or 2 : 1 molar ratios, the organic phase consisted of difunctional urethane acrylate oligomeric resin, multifunctional acrylate TMPTA and HDDA in 4 : 3 : 3 wt% ratio. The coating systems were investigated by FT-IR, $^{29}$ Si-NMR spectra. In addition, TGA/DSC for thermal analysis and SEM, AFM observation for coated surface were examined. Gererally, the homogeneity of phases, the surface smoothness of coating and abrasion resistance were improved with the higher content of inorganic component. Namely, coating system with below 10 $\AA$ surface roughness and T$_{g}$ of 15$0^{\circ}C$ showed only 10% decrease in light transmittance after abrasion test, whereas uncoated polycarbonate substrate exhibited 46% decrease..

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