• 제목/요약/키워드: PAN (polyacrylonitrile)

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탄소섬유의 기계적 특성에 대한 열처리의 영향 (Effect of Heat Treatment on the Mechanical Properties of Carbon Fiber)

  • 김부안;문창권;최영민
    • 동력기계공학회지
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    • 제21권5호
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    • pp.13-19
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    • 2017
  • The effect of heat treatment temperature (HTT) on the mechanical properties of polyacrylonitrile (PAN)-based carbon fiber had been investigated. The heat treatment on the carbon fiber was conducted under high vacuum atmosphere of $10^{-6}mmHg$, and the range of temperature of $1,000^{\circ}C$ to $2,000^{\circ}C$. As a results, The tensile strength of carbon fiber and carbon fiber composites showed increasing tendency with the rise of heat treatment temperature. And, the shape parameter of Weibull distribution for the strength of carbon single fiber showed an increasing trend until $1,800^{\circ}C$. But the shape parameter of Weibull distribution for the strength of carbon fiber composites showed no clear tendency with the rise of heat treatment temperature. The cause of reinforcement effect of the carbon fiber by the heat treatment was regarded as the carbonization of carbon single fiber.

상 분리 폴리머 혼합액의 전기 방사에 의한 나노 포러스 탄소 파이버 제작 (Fabrication of Nanoporous Carbon Fibers by Electrospinning)

  • 김홍연;이대희;문주호
    • 한국재료학회지
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    • 제19권10호
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    • pp.562-568
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    • 2009
  • Electrospinning is a technique that produces sub-micron sized continuous fibers by electric force from polymer solutions or melts. Due to its versatile manufacturability and the cost effectiveness, this method has been recently adopted for the fabrication of one-dimensional materials. Here, we fabricated polyacrylonitrile (PAN) polymer fibers, from which uniform carbon fibers with diameters of 100-200 nm were obtained after carbonization at 800 $^{\circ}C$ in N$_2$. Special emphasis was directed to the influence of the phase separated polymer solution on the morphology and the microstructure of the resulting carbon fiber. The addition of poly(stylene-co-acrylonitile) (SAN) makes the polymer solution phase separated, which allows for the formation of internal pores by its selective elimination after electrospinning. XPS and Raman Spectroscopy were used to confirm the surface composition and the degree of carbonization. At the PAN:SAN = 50:50 in vol%, the uniform carbon fibers with diameters of 300$\sim$500 nm and surface area of 131.6 m$^2$g$^{-1}$ were obtained.

Tensile Properties and Morphology of Carbon Fibers Stabilized by Plasma Treatment

  • Lee, Seung-Wook;Lee, Hwa-Young;Jang, Sung-Yeon;Jo, Seong-Mu;Lee, Hun-Soo;Lee, Sung-Ho
    • Carbon letters
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    • 제12권1호
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    • pp.16-20
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    • 2011
  • Commercial PAN fibers were thermally stabilized at 220 or $240^{\circ}C$ for 30 min. Those fibers were further stabilized using radio-frequency (RF) capacitive plasma discharge during 5 or 15 min. From Fourier transform infrared spectroscopy results, it was observed that an additional plasma treatment led to further stabilization of PAN fibers. After stabilization, carbonization was performed to investigate the final tensile properties of the fabricated carbon fibers (CFs). The results revealed that a combination of thermal and plasma treatment is a possible stabilization process for manufacturing CFs. Morphology of CFs was investigated using scanning electron microscopy. The morphology shows that the plasma stabilization performed by the RF large gap plasma discharge may damage the surface of the CF, so it is necessary to select a proper process condition to minimize the damage.

Fabrication and Characterization of Porous Non-Woven Carbon Based Highly Sensitive Gas Sensors Derived by Magnesium Oxide

  • Kim, Yesol;Cho, Seho;Lee, Sungho;Lee, Young-Seak
    • Carbon letters
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    • 제13권4호
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    • pp.254-259
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    • 2012
  • Nanoporous non-woven carbon fibers for a gas sensor were prepared from a pitch/polyacrylonitrile (PAN) mixed solution through an electrospinning process and their gas-sensing properties were investigated. In order to create nanoscale pores, magnesium oxide (MgO) powders were added as a pore-forming agent during the mixing of these carbon precursors. The prepared nanoporous carbon fibers derived from the MgO pore-forming agent were characterized by scanning electron microscopy (SEM), $N_2$-adsorption isotherms, and a gas-sensing analysis. The SEM images showed that the MgO powders affected the viscosity of the pitch/PAN solution, which led to the production of beaded fibers. The specific surface area of carbon fibers increased from 2.0 to $763.2m^2/g$ when using this method. The template method therefore improved the porous structure, which allows for more efficient gas adsorption. The sensing ability and the response time for the NO gas adsorption were improved by the increased surface area and micropore fraction. In conclusion, the carbon fibers with high micropore fractions created through the use of MgO as a pore-forming agent exhibited improved NO gas sensitivity.

스핀 코팅 가능한 폴리머의 후열처리를 통한 그래핀의 합성과 특성

  • 이임복;남정태;박상준;배동재;김근수
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2014년도 제46회 동계 정기학술대회 초록집
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    • pp.384.1-384.1
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    • 2014
  • 대면적 그래핀을 합성하는 방법으로 주로 화학기상증작법, SiC 기판을 고온 열처리하는 방법 그리고 최근에는 고체소스를 활용하여 그래핀을 합성하는 방법 등이 보고되고 있다. 이에, 본 연구에서는 폴리머 용액들을 원하는 기판에 스핀코팅하여 건조시킨 후, 후 열처리 공정을 통해 그래핀을 합성하고 물성을 평가해보았다. 그래핀 합성을 위해서 사용된 폴리머 탄소원은 Vinyl계 폴리머 용액으로, polystyrene (PS), polyacrylonitrile (PAN), 그리고 polymethylmetacrylate (PMMA) 등으로 2wt%의 폴리머 용액을 $SiO_2$기판에 스핀 코팅을 하고, 그 위에 Nickel이나 Copper와 같은 catalytic metal을 capping layer로 증착하고, 고진공에서 후열처리 공정에 의해 그래핀을 성장하였다. 이때, 탄소원으로 쓰인 PS, PMMA 폴리머는 pristine graphene 합성을 위해, PAN 폴리머는 질소가 도핑된(n-type) 그래핀 합성을 위해 사용되었다. 그래핀의 물성은 폴리머 종류, 코팅된 두께, 촉매 금속층 종류와 두께, 그리고 후열처리 공정 온도와 시간에 따라서 조절이 가능하였다. 우리는 Raman spectroscopy, AFM, SEM 등을 활용하여 그래핀의 층수, 결함, 표면양상 등을 평가하였고, 또한 전사된 그래핀을 기반으로 제작된 FET의 게이트 전압에 따른 I-V 곡선을 측정하여 캐리어 종류 및 전하 이동도 등을 평가하였다. 더욱 상세한 내용은 프레젠테이션에서 논하겠다.

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Mechanical and electrical properties of cement paste incorporated with pitch-based carbon fiber

  • Rhee, Inkyu;Kim, Jin Hee;Park, Sang Hee;Lee, Sungho;Ryu, Bong Ryeul;Kim, Yoong Ahm
    • Carbon letters
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    • 제23권
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    • pp.22-29
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    • 2017
  • The compressive strength and electrical resistance of pitch-based carbon fiber (CF) in cementitious materials are explored to determine the feasibility of its use as a functional material in construction. The most widely used CFs are manufactured from polyacrylonitrile (PAN-based CF). Alternatively, short CFs are obtained in an economical way using pitch as a precursor in a melt-blown process (pitch-based CF), which is cheaper and more eco-friendly method because this pitch-based CF is basically recycled from petroleum residue. In the construction field, PAN-based CFs in the form of fabric are used for rehabilitation purposes to reinforce concrete slabs and piers because of their high mechanical properties. However, studies have revealed that construction materials with pitch-based CF are not popular. This study explores the compressive strength and electrical resistances of a cement paste prism using pitch-based CF.

Influence of Oxyfluorination on Properties of Polyacrylonitrile (PAN)- Based Carbon Fibers

  • Lim, In-Seub;Yoo, Seung-Hwa;Park, Il-Nam;Lee, Young-Seak
    • Carbon letters
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    • 제5권1호
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    • pp.12-17
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    • 2004
  • In this study, the oxyfluorination of PAN-based carbon fibers was undertaken at room temperature using fluorine-oxygen mixtures, and the influence of oxyfluorination on properties was investigated. The surface characteristics of the modified fiber were determined by using X-ray photoelectron spectroscopy (XPS) and dynamic contact angle analyzer. The oxyfluorination of carbon fibers was one of the more effective methods to increase surface wettability by the formation of semicovalent C-F bond and C-O bond depending on reaction conditions. When oxygen mole fraction is increased from 0.5 to 0.9, it is probable that attached fluorine atoms at the surface of the fibers reacted with other components. As increased oxyfluorination time and decreased its pressures, semi-covalent peak is increased at 0.5 of oxygen mole fraction. The total surface free energy of oxyfluorinated carbon fibers decreased with increasing oxygen mole fraction over 0.5. These results indicate that the surface of carbon fibers became much more hydrophilic after the short oxyfluorination. The surface free energy of oxyfluorinated carbon fibers progressively decreased after 10 min treatment. The polar components of surface free energies were however, significantly higher for all oxyfluorinated samples than that for the untreated carbon fiber.

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전자선 안정화에 의한 니켈 나노 입자가 분산된 탄소섬유의 전자기적 특성 향상 (Enhanced Electromagnetic Properties of Nickel Nanoparticles Dispersed Carbon Fiber via Electron Beam Irradiation)

  • 이영주;김현빈;이승준;강필현
    • 방사선산업학회지
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    • 제9권1호
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    • pp.15-20
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    • 2015
  • Carbon fiber has received much attention owing to its properties, including a large surface-to-volume ratio, chemical and thermal stability, high thermal and electrical conductivity, and high mechanical strengths. In particular, magnetic nanopowder dispersed carbon fiber has been attractive in technological applications such as the electrochemical capacitor and electromagnetic wave shielding. In this study, the nickel-oxide-nanoparticle dispersed polyacrylonitrile (PAN) fibers were prepared through an electrospinning method. Electron beam irradiation was carried out with a 2.5 MeV beam energy to stabilize the materials. The samples were then heat-treated for stabilization and carbonization. The nanofiber surface was analyzed using a field emission scanning electron microscope (FE-SEM). The crystal structures of the carbon matrix and nickel nanopowders were analysed using X-ray diffraction (XRD). In addition, the magnetic and electrical properties were analyzed using a vibrating sample magnetometer (VSM) and 4 point probe. As the irradiation dose increases, the density of the carbon fiber was increased. In addition, the electrical properties of the carbon fiber improved through electron beam irradiation. This is because the amorphous region of the carbon fiber decreases. This electron beam effect of PAN fibers containing nickel nanoparticles confirmed their potential as a high performance carbon material for various applications.

Development of New Processes for the Decommissioning Decontamination and for Treatment and Disposal of the Secondary Low- and Intermediate-Level Radioactive Waste

  • John, Jan;Bartl, Pavel;Cubova, Katerina;Nemec, Mojmir;Semelova, Miroslava;Sebesta, Ferdinand;Sobova, Tereza;Sul'akova, Jana;Vetesnik, Ales;Vopalka, Dusan
    • 방사성폐기물학회지
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    • 제19권1호
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    • pp.9-27
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    • 2021
  • As an example of research activities in decontamination for decommissioning, new data are presented on the options for corrosion layer dissolution during the decommissioning decontamination, or persulfate regeneration for decontamination solutions re-use. For the management of spent decontamination solutions, new method based on solvent extraction of radionuclides into ionic liquid followed by electrodeposition of the radionuclides has been developed. Fields of applications of composite inorganic-organic absorbers or solid extractants with polyacrylonitrile (PAN) binding matrix for the treatment of liquid radioactive waste are reviewed; a method for americium separation from the boric acid containing NPP evaporator concentrates based on the TODGA-PAN material is discussed in more detail. Performance of a model of radionuclide transport, developed and implemented within the GoldSim programming environment, for the safety studies of the LLW/ILW repository is demonstrated on the specific case of the Richard repository (Czech Republic). Continuation and even broadening of these activities are expected in connection with the approaching end of the lifespan of the first blocks of the Czech NPPs.

활성탄소섬유-세라믹복합체의 제조 및 물성 (Preparation of Activated Carbon Fiber-Ceramic Composites and Its Physical Properties)

  • 이재춘;박민진;김병균;신경숙;이덕용
    • 한국세라믹학회지
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    • 제34권1호
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    • pp.56-62
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    • 1997
  • 탄화된 PAN 섬유, 페놀수지, 세라믹 결합체를 혼합하여 탄소섬유-세라믹복합체를 제조한 후 활성화시켜 PAN 섬유의 탄화온도에 따른 활성탄소섬유-세라믹복합체의 비표명적과 굽힘 강도변화를 연구하였다. 안정화 PAN 섬유를 80$0^{\circ}C$와 100$0^{\circ}C$에서 각각 탄화시켜 얻은 두 종류의 탄소섬유를 복합체 제작시편의 원료로 사용하였다. 탄소섬유-세라믹복합체를 10~90분간 CO2로 85$0^{\circ}C$에서 활성화시켜 얻은 두 종류의 활성복합체에 대한 물성 측정결과, 80$0^{\circ}C$로 PAN 섬유를 탄화시켜 만든 활성복합체의 burn-off이 37%에서 76%로 증가될 때 비표면적은 493m2/g에서 1090m2/g으로 증가하였으며, 굽힘강도는 4.5 MPa에서 1.4MPa로 감소하였다. 이 값들은 안정화 PAN 섬유의 탄화온도를 100$0^{\circ}C$로하여 활성복합체 시편이 나타내는 값보다 약 2배 정도 큰 값이었다. 비표면적, 굽힘강도 측정결과와 미세조직 관찰결과, PAN 섬유의 탄화온도가 활성복합체의 비표면적과 굽힘강도에 미치는 영향은 활성화시 탄소섬유와 페놀수지탄화체 또는 세라믹 필름간에 발생되는 결합력과 상대적인 수축율에 의해 결정되는 활성복합체의 구조특성에 기인된 것으로 해석하였다.

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