• 제목/요약/키워드: Silicon Carbide

검색결과 745건 처리시간 0.029초

폐슬러지 Si 분말을 이용한 SiC 제조 (SiC Synthesis by Using Sludged Si Power)

  • 최미령;김영철;장영철
    • 마이크로전자및패키징학회지
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    • 제10권3호
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    • pp.67-71
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    • 2003
  • 실리콘 주괴(ingot)에서 실리콘 웨이퍼를 제조할 때 사용되는 슬러리는 SiC 연마재와 절삭유를 포함한다. 실리콘 웨이퍼 제조 시 생긴 폐슬러지에서 SiC 연마재와 절삭유는 분리되어 재활용된다. 본 연구는 폐슬러지 Si 분말에 C분말을 혼합하여 SiC를 합성하는 것에 관한 것이다. 다양한 크기의 SiC 분말과 휘스커가 제조되었으며 기존의 휘스커의 크기보다 작은 나노미터 크기의 휘스커도 발생하였다. 일반적으로 휘스커는 금속 불순물을 첨가하여 제조되는데, 본 연구에서 나노미터 크기의 휘스커 발생은 폐슬러지에 첨가되어있는 미세한 크기의 금속불순물의 영향으로 판단된다.

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산화물 결합 탄화규소 다공질 소재에 관한 연구 (Studies on the Oxide Bonded Silicon Carbide Porous Materials)

  • 이재춘;국일현
    • 한국세라믹학회지
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    • 제27권2호
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    • pp.179-186
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    • 1990
  • Silicon carbide porous materials used for hot gas filters were prepared using oxide binder. Chamotte, frit and H3PO4 were starting materials to synthesize the oxide binder for high temperature-use. Room temperature bending strength of the silicon carbide porous body was increased with increasing firing temprature or with the amount of the content of frit in the oxide binder. However, in the oxidebinder fired above132$0^{\circ}C$, cristobalite form of AlPO4 phase which undergoes rapid inversion became more prominent with increasing firing time. the average pore size of the silicon carbide filter materials was found to be about one third of the average grain size of the silicon carbide powder used in this study.

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탄화규소 나노섬유의 제조 및 물성 (Preparation and Characterization of Silicon Carbide Nanofiber)

  • 신현익;송현종;김명수;임연수;이재춘
    • 한국세라믹학회지
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    • 제37권4호
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    • pp.376-380
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    • 2000
  • Carbon nanofibers with an average diameter of 100nm were reacted with SiO vapor generated from a mixture of Si and SiO2 to produce silicon carbide nanofibers at temperature ranging 1200∼1500$^{\circ}C$ under vacuum. The nanofiber reacted at 1200$^{\circ}C$ for two hours consisted of silicon carbide with an average crystallite size of 10-20nm, amorphous silica and a significant amount of unreacted carbon. The surface area of silicon carbide nanofiber, obtained after removal of amorphous silica and unreacted carbon from converted carbon nanofibers at 1200$^{\circ}C$, was as high as 150㎡/g. With increasing reaction temperature to 1500$^{\circ}C$, the surface area was decreased to 14㎡/g. Growth of SiC crystallite size with increasing conversion temperature of carbon nanofiber was confirmed from Scherrer formula using the (111) diffraction line and TEM images of converted carbon nanofibers.

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실리콘 및 탄소 복합 열환원 반응을 이용한 페로실리크롬 합금철의 제조 (Production of Fe-Si-Cr Ferro Alloy by Using Mixed Silicothermic and Carbothermic Reduction)

  • 김종호;정은진;이고기;정우광;유선준;장영철
    • 한국재료학회지
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    • 제27권5호
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    • pp.263-269
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    • 2017
  • Fe-Si-Cr ferroalloy is predominantly produced by carbothermic reduction. In this study, silicothermic and carbothermic mixed reduction of chromite ore to produce Fe-Si-Cr alloy is suggested. As reductants, silicon and silicon carbide are evaluated by thermochemical calculations, which prove that silicon carbide can be applied as a raw material. Considering the critical temperature of the change from the carbide to the metallic form of chromium, thereduction experiments were carried out. In these high temperature reactions, silicon and silicon carbide act as effective reductants to produce Fe-Si-Cr ferroalloy. However, at temperatures lower than the critical temperature, silicon carbide shows a slow reaction rate for reducing chromite ore. For the proper implementation of a commercial process that uses silicon carbide reductants, the operation temperature should be kept above the critical temperature. Using equilibrium calculations for chromite ore reduction with silicon and silicon carbide, the compositions of reacted metal and slag were successfully predicted. Therefore, the mass balance of the silicothermic and carbothermic mixed reduction of chromite ore can be proposed based on the calculations and the experimental results.

태양광 폐실리콘 웨이퍼 회수 실리콘을 활용한 탄화규소 분말 합성 (Synthesis of Silicon Carbide Powder Using Recovered Silicon from Solar Waste Silicon Wafer)

  • 이윤주;권오규;선주형;장근용;최준철;권우택
    • 자원리싸이클링
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    • 제31권5호
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    • pp.52-58
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    • 2022
  • 태양광 폐실리콘 웨이퍼에서 회수한 실리콘과 카본블랙을 활용하여 탄화규소 분말을 제조하였다. 태양광 발전시장에서 결정질 실리콘 모듈이 90% 이상을 차지한다. 태양광 모듈의 사용기한이 도래함에 따라 환경과 경제적인 측면에서 실리콘을 회수하고 활용하는 기술은 매우 중요하다. 본 연구에서는 태양광 폐패널에서 회수한 실리콘을 탄화규소 원료로 활용하기 위하여, 순도 95.74% 폐실리콘 웨이퍼로부터 정제과정을 거쳐 99.99% 실리콘 분말을 회수하였다. 탄화규소 분말 합성특성을 살펴보기 위하여, 정제된 99.99% 실리콘 분말과 탄소분말을 혼합한 후, Ar 분위기에서 열처리(1,300℃, 1,400℃, 1,500℃)과정을 수행하였다. 실리콘과 탄화규소 분말의 특성을 입도분포, XRD, SEM, ICP, FT-IR 및 Raman 분석기를 사용하여 분석하였다.

폴리실리콘용 유동층 반응기에서 탄화규소의 내구성과 적합성 연구 (Endurance and Compatibility of Silicon Carbide as Fluidized Bed Reactor for Poly-silicon)

  • 최균;서진원;한윤수;손민수
    • 한국표면공학회지
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    • 제47권6호
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    • pp.354-361
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    • 2014
  • In order to utilize silicon carbide (SiC) as an inner part of fluidized bed reactor (FBR) for manufacturing poly-silicon, we have carried out the thermodynamic calculation on the overall reactions including poly-silicon synthesis and compatibility of SiC with FBR process. The resources of silicon included $SiH_4(MS)$, $SiHCl_3(TCS)$ and $SiCl_4(STC)$ and the thermodynamic yield of the FBR with MS, TCS and STC were compared each other with variable range of temperature, pressure and hydrogen to silicon ratio. The silicon yield of MS, TCS and STC were 100%, 28% and 4%, respectively, throughout the conventional FBR conditions. Silicon carbide having high hardness and strength showed strong resistance to granule collisions during the FBR process using a lab-scale reactor. And it also showed quite good compatibility with the typical FBR processes of MS and TCS resources.

Effect of Silicon Nitride Whisker Content on the Flexural Strength of Silicon Nitride-Boron Nitride-Silicon Carbide Multi-Layer Composites

  • Park, Dong-Soo;Cho, Byung-Wook
    • 한국세라믹학회지
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    • 제40권9호
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    • pp.832-836
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    • 2003
  • Multi-layer ceramic composites were prepared by tape casting followed by hot pressing using silicon nitride layer with silicon nitride whiskers, silicon nitride layer with silicon carbide particles and boron nitride-alumina layer. The whiskers were aligned during the casting. As the whisker content of the silicon nitride layer was increased up to 10 wt%, the flexural strength of the multi-layer composite was increased. However, further increase of the whisker content in the layer resulted in a rapid decrease of the strength of the composite. The results suggest that the strength of multi-layer ceramic composite showing non-catastrophic failure behavior can be significantly improved by incorporating the aligned whiskers in the layers.

고화소 카메라폰 모듈을 위한 Glass 렌즈 성형용 Silicon Carbide 코어의 초정밀 가공에 관한 연구 (A Study on Ultra Precision Grinding of Silicon Carbide Molding Core for High Pixel Camera Phone Module)

  • 김현욱;김정호;;곽태수;정상화
    • 한국정밀공학회지
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    • 제27권7호
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    • pp.117-122
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    • 2010
  • Recently, aspheric glass lens molding core is fabricated with tungsten carbide(WC). If molding core is fabricated with silicon carbide(SiC), SiC coating process, which must be carried out before the Diamond-Like Carbon(DLC) coating can be eliminated and thus, manufacturing time and cost can be reduced. Diamond Like Carbon(DLC) is being researched in various fields because of its high hardness, high elasticity, high durability, and chemical stability and is used extensively in several industrial fields. Especially, the DLC coating of the molding core surface used in the fabrication of a glass lens is an important technical field, which affects the improvement of the demolding performance between the lens and molding core during the molding process and the molding core lifetime. Because SiC is a material of high hardness and high brittleness, it can crack or chip during grinding. It is, however, widely used in many fields because of its superior mechanical properties. In this paper, the grinding condition for silicon carbide(SiC) was developed under the grinding condition of tungsten carbide. A silicon carbide molding core was fabricated under this grinding condition. The measurement results of the SiC molding core were as follows: PV of 0.155 ${\mu}m$(apheric surface) and 0.094 ${\mu}m$(plane surface), Ra of 5.3 nm(aspheric surface) and 5.5 nm(plane surface).

화학적 기상 반응에 의한 탄화규소 피복 흑연의 시뮬레이션(Ⅰ) (Simulation of Silicon Carbide Converted Graphite by Chemical Vapor Reaction (Ⅰ))

  • 이준성;최성철
    • 한국세라믹학회지
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    • 제38권9호
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    • pp.846-852
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    • 2001
  • 2차원적 몬테 칼로 시뮬레이션을 사용하여, 화학적 기상 반응법에 의한 탄화규소 전환층의 생성에 미치는 온도의 영향을 조사하였다. 화학적 기상 반응법은 실리카의 열탄화 환원법에 근거하며, 흑연 기판의 탄소와 실리카 반응기체와의 화학적 반응에 의하여 탄화규소 전환층을 형성하는 방법이다. 탄화규소는 반응기체의 확산 및 반응과 같은 열적활성화 과정을 통하여 생성되기 때문에 탄화규소 전환층의 형성은 온도에 크게 의존함을 알 수 있다. 본 연구에서는 몬테 칼로법을 사용하여 삼각격자로 배열된 2차원적인 계에서 흑연 기판의 미세 기공을 따라 확산된 반응기체와 탄소와의 반응에 의해서 탄화규소가 형성되는 과정을 시뮬레이션을 행하였다. 반응 온도를 1900K, 2000K, 2100K, 2200K로 조건을 달리하여 시뮬레이션 하였으며, 그 계산 결과를 실험 결과와 비교하여 재현성을 검토하고 탄화규소 전환층의 두께와 화학적 조성 구배에 대한 반응 온도의 영향을 검증하기 위한 것이다.

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Properties of Silicon Carbide-Carbon Fiber Composites Prepared by Infiltrating Porous Carbon Fiber Composites with Liquid Silicon

  • Lee, Jae-Chun;Park, Min-Jin;Shin, Kyung-Sook;Lee, Jun-Seok;Kim, Byung-Gyun
    • The Korean Journal of Ceramics
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    • 제3권4호
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    • pp.229-234
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    • 1997
  • Silicon carbide-carbon fiber composites have been prepared by partially Infiltrating porous carbon fiber composites with liquid silicon at a reaction temperature of $1670^{\circ}C$. Reaction between molten silicon and the fiber preform yielded silicon carbide-carbon fiber composites composed of aggregates of loosely bonded SiC crystallites of about 10$\mu\textrm{m}$ in size and preserved the appearance of a fiber. In addition, the SiC/C fiber composites had carbon fibers coated with a dense layer consisted of SiC particles of sizes smaller than 1$\mu\textrm{m}$. The physical and mechanical properties of SiC/C fiber composites were discussed in terms of infiltrated pore volume fraction of carbon preform occupied by liquid silicon at the beginning of reaction. Lower bending strength of the SiC/C fiber composites which had a heterogeneous structure in nature, was attributed to the disruption of geometric configuration of the original carbon fiber preform and the formation of the fibrous aggregates of the loosely bonded coarse SiC particles produced by solution-precipitation mechanism.

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