• Title/Summary/Keyword: 탄화 특성

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Pt/$\beta$-Sic 접촉의 열처리에 따른 특성변화

  • 나훈주;정재경;엄명윤;김형준
    • Proceedings of the Korean Vacuum Society Conference
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    • 2000.02a
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    • pp.79-79
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    • 2000
  • 탄화규소는 그 전기적, 열적 기계적 안정성 때문에 새로운 반도체 재료로서 주목받고 있는 물질이다. 탄화규소를 이용하여 전자소자를 제조하기 위해서는 ohmic 접촉과 Schottky 접촉을 형성하는 전극물질의 개발이 선행되어야 하며, 고온, 고주파, 고출력용 반도체 소자를 제조하기 위해서는 전극의 고온 안정성 확보가 필수적이다. 따라서 탄화규소 소자의 응용범위는 전극에 의해서 제한된다고 할 수 있다. 일반적으로 전극을 증착한 후 원하는 접촉 특성을 얻기 위해서는 열처리 과정을 거쳐야 하며 접촉의 특성이 열처리에 의해 영향을 받는 것으로 알려져 있다. 따라서 본 연구에서는 열처리가 금속/탄화규소 접촉의 특성에 미치는 영향을 알아보고자 하였으며, 이를 바탕으로 우수한 Schottky 다이오드의 제작 가능성을 타진해보고자 하였다. 유기실리콘 화합물 원료인 TEMSM(bis-trimethysilylmethane)을 사용하여 실리콘 기판위에 단결정 $eta$-Sic 박막을 증착하였다. 기판의 영향을 줄이기 위하여 $\beta$-Sic 박막의 두께가 $1.5mu extrm{m}$ 이상인 시편을 사용하였다. 전극으로는 Pt를 사용하였으며, 전극 증착은 DC magnetron sputter를 이용하였다. 전기적인 특성을 분석하기 위하여 전류-전압, 커패시턴스-전압 특성을 분석하였고, XRD와 AES를 이용하여 계면에서의 반응을 알아보았다. Hall 측정 결과 모든 $\beta$-Sic 박막은 약 2$\times$1018cm-3 정도의 도핑 농도를 갖는 n형 탄화규소임을 확인하였다. Pt/$\beta$-Sic 접촉은 열처리 전에는 ohmic 접촉 특성을 보였으나 열처리 후에는 Schottky 접촉의 특성을 나타냈다. 전기적 특성 분석을 통하여 열처리 온도가 증가할수록 에너지 장벽의 높이가 증가하는 것을 알 수 있었다. 이상적인 Pt/$\beta$-Sic 접촉의 특성을 보이는 것은 전극 증착시 sputtering에 의하여 계면에 발생한 결함이 도너의 역할을 하여 에너지 장벽의 두께를 감소시켜 tunneling을 촉진하기 때문인 것으로 판단된다. 열처리 후 접촉 특성이 변화하는 것은 이러한 결함들의 소멸 때문으로 생각된다. AES 분석을 통하여 열처리시 Pt가 $\beta$-Sic 내부로 확산하는 것을 알 수 있었으며, 이 때 Pt가 $\beta$-Sic 와 반응하여 계면에 실리사이드가 형성됨으로써 Pt/$\beta$-Sic 계면이 보다 안정한 탄화규소 박막 내부로 이동하게 되고 계면의 결함 농도가 줄어드는 것이 접촉 특성 변화의 원인이라 할 수 있다. 열처리 온도가 증가함에 따라 계면이 점점 $\beta$-Sic 내부로 이동하여 결함농도가 낮아지기 때문에 tunneling 효과가 감소하여 에너지 장벽이 높아지게 된다. Pt를 ohmic 접촉과 Schottky 접촉 전극물질로 이용하여 제작한 Schottky 다이오드는 ohmic 접촉 형성시 Schottky 접촉에 발생하는 wputtering 손상에 의하여 좋은 정류특성을 얻지 못하였다. 따라서 chmic 접촉 전에 Schottky 접촉의 passivation이 필요한 것으로 판단된다.

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Carbonization of Pitch-coated Glass Fibers on Thermal Conductivity of Epoxy Composites (피치 코팅된 유리섬유의 탄화가 에폭시 복합재료의 열전도도에 미치는 영향)

  • Beom, Seung-Won;Lee, Seul-Yi;Lee, Ji-Han;Park, Sang Hee;Park, Soo-Jin
    • Composites Research
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    • v.26 no.5
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    • pp.315-321
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    • 2013
  • In this work, pitch-carbonized glass fibers were prepared for reinforcement of composites. The influence of acid functionalization of the fibers on the morphological, mechanical, and thermal properties of fiber-reinforced epoxy matrix composites was investigated. The acid functionalization of the fibers led to 10 and 150% increases in the mechanical and thermal properties, respectively, as compared to carbon fiber-reinforced composites. This can be attributed to the superior orientation of fiber structures and good interfacial interactions between fillers and epoxy matrix, resulting in enhanced degree of dispersion and formation of thermally conductive paths in the functionalized composites.

Characteristics of Charcoal from Wood Pellet (목질펠릿으로 제조한 탄화물의 특성)

  • Han, Gyu-Seong;Kim, Byung-Ro
    • Journal of the Korean Wood Science and Technology
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    • v.34 no.3
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    • pp.15-21
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    • 2006
  • The objective of this research is to develop the technique for carbonization of wood pellet and analyze a possibility for the utilization of carbonized wood pellet. The properties of wood pellet charcoals, such as density, yield, elemental composition, higher heating value, and methyleneblue adsorption, were analyzed. Wood pellet was made of sawdust of Hyunsasi-poplar, Japanese larch, Korean pine, Korean red pine, and Jolcharn-oak (serrate oak), respectively. The high density charcoal ($0.5{\sim}0.7g/cm^3$) was yielded from densified wood pellet. The carbon contents and calorific values of wood pellet charcoals were increased with the increase of carbonization temperature. The methyleneblue adsorptivity of wood pellet charcoal was similar to that of wood charcoal.

원자력용 316LN 스테인레스강의 탄화물 석출 거동

  • 오용준;류우석;윤지현;홍준화;국일현
    • Proceedings of the Korean Nuclear Society Conference
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    • 1995.05b
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    • pp.689-694
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    • 1995
  • 원자력용 316LN 스테인레스강의 입계탄화물 석출거동에 미치는 질소 및 Ti, B의 미량원소 영향을 시차열분석기(DSC)와 투과전자현미경(TEM)을 이용하여 관찰하였으며, 이들 결과와 예민화 특성과의 관계성을 분석하였다. Ti과 B의 첨가는 316LN 강의 탄화물 석출온도를 높이며, 탄화물 석출에 필요한 활성화에너지 값은 미첨가강에 비해 높았다. TEM/EDX 분석결과, 예민화된 316 LN 강은 M$_{23}$C$_{6}$ 탄화물이 입계에 석출되며 입계에서 Cr 고같층이 관찰되었다. 반면 Ti 및 B 첨가강은 7$50^{\circ}C$, 20시간 열처리 조건에서도 거의 입계석출물이 존재하지 않았으며 일부 소량 존재하는 입계 석출물은 EDX 분석결과 Mo-rich 상인 Laves 상으로 분석되었다. DSC와 TEM 분석 결과는 Oxalic 시험 및 Modified Strauss 시험에 의한 입계 부시시험결과와 잘 일치하였고, Ti 및 B의 첨가는 Cr의 확산을 저지시켜 입계탄화물의 석출 및 성장을 저지하는 역할을 하며, 316LN 강의 예민화 특성을 양호하게 하였다.

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Evaluation on Adequate Range of Carbonization Temperature using Swine Manure through Reaction Kinetics (반응속도 분석을 통한 돈분의 탄화 온도 적정범위 평가)

  • Choi, Hyeong-Jin;Rhee, Seung-Whee
    • Resources Recycling
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    • v.26 no.2
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    • pp.25-32
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    • 2017
  • Since the heating values of swine manures were very low at 859~1,075 kcal/kg, it was necessary to convert to carbonization residue by carbonization processes among thermal processes. The most important factor in the carbonization process of swine manure is the carbonization temperature, and it was evaluated the optimal range of carbonization temperature for swine manure in this study by the thermal characteristics and the reaction kinetics. The carbonization of swine manure could be described by the 1st order reaction and Arrhenius equation. The frequency factor (lnA) and the activation energy were estimated to be 3.05~13.08 and 6.94~18.05 kcal/mol, respectively. The range of optimal carbonization temperature range of swine manure was $260{\sim}300^{\circ}C$.

Solid Fuel Carbonization Characteristics through Hydrothermal Carbonization of Sewage Sludge (하수슬러지의 수열탄화를 통한 고형연료 탄화 특성)

  • Seong Kuk Han;Moonil Kim
    • Journal of the Korea Organic Resources Recycling Association
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    • v.31 no.2
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    • pp.53-61
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    • 2023
  • Most of the sewage sludge is organic waste containing a large amount of organic substances decomposable by microorganisms by biological treatment. As for existing sewage sludge treatment methods, reduction and fuel conversion are being carried out using technologies such as drying, incineration, torrefaction, carbonization. However, the disadvantage of high energy consumption has been pointed out as latent heat of 539 kcal/kg is consumed based on drying. Therefore, in this study, we intend to produce solid fuel through hydrothermal carbonization(HTC), which is a thermochemical treatment. To evaluate the value of solid fuel, the characteristics of carbonization and fuel ratio were analyzed. As a result, as the hydrothermal carbonization reaction temperature increased, the lower heating value also increased by about 500 kcal/kg due to the increase in the degree of carbonization. H/C, O/C, ratio showed a decreasing trend from 1.78, 0.46 to 1.57, 0.32. When the ratio of ash to combustible content (fixed carbon + volatile) of dry sludge was 0.25 or more, it was derived that the degree of carbonization and calorific value did not increase even when hydrothermal carbonization was performed.

Effect of carbon and boron addition on sintering behavior and mechanical properties of hot-pressed SiC (카본 및 보론 첨가가 탄화규소 열간 가압 소결거동 및 기계적 특성에 미치는 영향)

  • Ahn, Jong-Pil;Chae, Jae-Hong;Kim, Kyoung-Hun;Park, Joo-Seok;Kim, Dae-Gean;Kim, Hyoung-Sun
    • Journal of the Korean Crystal Growth and Crystal Technology
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    • v.18 no.1
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    • pp.15-21
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    • 2008
  • SiC has an excellent resistance to oxidation and corrosion, high temperature strength and good thermal conductivity. However, it is difficult to density because of its highly covalent bonding characteristics. Hot-press sintering process was applied to fabricate fully densified SiC ceramics with carbon and boron addition as a sintering additive. The addition of carbon improved the mechanical properties of SiC because it could induce a fine and homogeneous microstructure by the suppression of abnormal growth of SiC grain. Also, the addition of carbon could control the phase transformation of SiC. The phase transformation of 6H to 4H increased with sintering temperature but the addition of carbon decreased that kind of phase transformation.

Study on Torrefaction Characteristics of Solid Biomass Fuel and Its Combustion Behavior (바이오매스 고형연료의 반탄화 특성 및 반탄화물의 연소특성에 관한 연구)

  • Lee, Weon Joon
    • Journal of the Korea Organic Resources Recycling Association
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    • v.23 no.4
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    • pp.86-94
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    • 2015
  • Torrefaction is a thermochemical process proceeded at the temperature around $250^{\circ}C$ in an inert gas condition. By torrefaction, the hemicellulose portions contained in biomass are broken down to change into the volatile gas which is removed from biomass eventually. The main purpose of biomass torrefaction is to improve the energy density of the biomass to minimize the transport energy consumption, though the flammability can be elevated for transportation. In this study two types of solid biomass fuel, waste wood and rice straw, were torrefied at various temperature range from $200^{\circ}C$ to $300^{\circ}C$ to evaluate the torrefied biomass characteristics. In addition torrefied biomass were tested to evaluate the combustion characteristics using TGA (Thermogravimetric Analysis). After the torrefaction of biomass, the C/H (carbon to hydrogen ratio) and C/O (carbon to oxygen ratio) were measured for aquisition of bio-stability as well as combustion pattern. Generally C/H ratio implies the soot formation during combustion, and the C/O ratio for bio-stability. By torrefaction temperature at $300^{\circ}C$, C/H ratio and C/O ratio were increased by two times for C/H and three times for C/O. The torrefied biomass showed similar TGA pattern to coal compared to pure biomass; that is, less mass decrease at lower temperature range for torrefied biomass than the pure biomass.

Characterizations on the Thermal Insulation of SiC Coated Carbon-Carbon Composites (탄화규소로 코팅된 탄소-탄소 복합재료의 단열 특성)

  • Seo, Hyoung-IL;Lim, Byung-Joo;Sihn, Ihn Cheol;Bae, Soobin;Lee, Hyung-Ik;Choi, Kyoon;Lee, Kee Sung
    • Composites Research
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    • v.33 no.3
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    • pp.101-107
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    • 2020
  • This study investigates the characterization on the thermal insulation properties of silicon carbide coating on the Cf-C composites. The silicon carbide coatings by chemical vapor deposition on the C/C composites are prepared to evaluate thermal resistance. Firstly, we perform the basic insulation test by thermal shock at 1350℃ in air on the C/C composite and SiC-coated C/C composite. We also performed the burner tests on the surface of the composites at high temperatures such as 1700 and 2000℃, and the weight change after burner tests are measured. The damages on the surface of C/C composite and SiC-coated composite are observed. As a result, the SiC coating is beneficial to protect the C/C composite from high temperature even though damages such as defoliation, crack and voids are observed during burner test at 2000℃.

Comparative Study on Adsorption Properties of Carbons Derived from Lignin and Polymer/Lignin Composite Precursors (리그닌 및 고분자/리그닌 복합소재 탄화 생성물의 흡착 특성 비교)

  • Young Soon Im;Ahyeon Jin;Sun Young Park;Mijung Kim;Joonwon Bae
    • Applied Chemistry for Engineering
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    • v.34 no.5
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    • pp.488-492
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    • 2023
  • In this study, a carbon film derived from a polymer/lignin composite precursor was produced by a carbonization cycle with a controlled temperature profile. The feasibility of successful formation of the carbon film using the carbonization cycle was monitored. The adsorption behavior of the carbon film toward various molecules, such as nonpolar and polar organic molecules, and dyes was investigated using ultraviolet/visible (UV/Vis) spectroscopy compared with that of carbonized lignin. Cyclic voltammetry (CV) analysis proved that a robust carbon film was prepared by the carbonization cycle. It was also demonstrated that the carbonized lignin and carbon film showed adsorption capability toward all types of organic molecules, in particular organic dyes, owing to the carbonized lignin. This work provides important information for future relevant research.