• 제목/요약/키워드: Carbon nitrogen nanofiber

검색결과 10건 처리시간 0.025초

Electrospun Polyacrylonitrile-Based Carbon Nanofibers and Their Hydrogen Storages

  • Kim Dong-Kyu;Park Sun Ho;Kim Byung Chul;Chin Byung Doo;Jo Seong Mu;Kim Dong Young
    • Macromolecular Research
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    • 제13권6호
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    • pp.521-528
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    • 2005
  • Electrospun polyacrylonitrile (PAN) nanofibers were carbonized with or without iron (III) acetylacetonate to induce catalytic graphitization within the range of 900-1,500$^{circ}C$, resulting in ultrafine carbon fibers with a diameter of about 90-300 nm. Their structural properties and morphologies were investigated. The carbon nanofibers (CNF) prepared without a catalyst showed amorphous structures and very low surface areas of 22-31 $m^{2}$/g. The carbonization in the presence of the catalyst produced graphite nanofibers (GNF). The hydrogen storage capacities of these CNF and GNF materials were evaluated through the gravimetric method using magnetic suspension balance (MSB) at room temperature and 100 bar. The CNFs showed hydrogen storage capacities which increased in the range of 0.16-0.50 wt$\%$ with increasing carbonization temperature. The hydrogen storage capacities of the GNFs with low surface areas of 60-253 $m^{2}$/g were 0.14-1.01 wt$\%$. Micropore and mesopore, as calculated using the nitrogen gas adsorption-desorption isotherms, were not the effective pore for hydrogen storage.

염료감응형 태양전지의 저비용 상대전극을 위한 N-doped ZnO 나노입자-탄소나노섬유 복합체 (N-Doped ZnO Nanoparticle-Carbon Nanofiber Composites for Use as Low-Cost Counter Electrode in Dye-Sensitized Solar Cells)

  • 안하림;안효진
    • 한국재료학회지
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    • 제24권10호
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    • pp.565-571
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    • 2014
  • Nitrogen-doped ZnO nanoparticle-carbon nanofiber composites were prepared using electrospinning. As the relative amounts of N-doped ZnO nanoparticles in the composites were controlled to levels of 3.4, 9.6, and 13.8 wt%, the morphological, structural, and chemical properties of the composites were characterized by means of field-emission scanning electron microscopy (FESEM), transmission electron microscopy (TEM), X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS). In particular, the carbon nanofiber composites containing 13.8 wt% N-doped ZnO nanoparticles exhibited superior catalytic properties, making them suitable for use as counter electrodes in dye-sensitized solar cells (DSSCs). This result can be attributed to the enhanced surface roughness of the composites, which offers sites for $I_3{^-}$ ion reductions and the formation of Zn3N2 phases that facilitate electron transfer. Therefore, DSSCs fabricated with 13.8 wt% N-doped ZnO nanoparticle-carbon nanofiber composites showed high current density ($16.3mA/cm^2$), high fill factor (57.8%), and excellent power-conversion efficiency (6.69%); at the same time, these DSSCs displayed power-conversion efficiency almost identical to that of DSSCs fabricated with a pure Pt counter electrode (6.57%).

산소환원반응 촉매용 질소 도핑된 탄소나노섬유의 제조 (Synthesis of Nitrogen-doped Carbon Nanofibers for Oxygen Reduction Reaction)

  • 안건형;이은환;안효진
    • 한국분말재료학회지
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    • 제23권6호
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    • pp.420-425
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    • 2016
  • N-doped carbon nanofibers as catalysts for oxygen-reduction reactions are synthesized using electrospinning and carbonization. Their morphologies, structures, chemical bonding states, and electrochemical performance are characterized. The optimized N-doped carbon nanofibers exhibit graphitization of carbon nanofibers and an increased nitrogen doping as well as a uniform network structure. In particular, the optimized N-doped carbon nanofibers show outstanding catalytic activity for oxygen-reduction reactions, such as a half-wave potential ($E_{1/2}$) of 0.43 V, kinetic limiting current density of $6.2mAcm^{-2}$, electron reduction pathways (n = 3.1), and excellent long-term stability after 2000 cycles, resulting in a lower $E_{1/2}$ potential degradation of 13 mV. The improvement in the electrochemical performance results from the synergistic effect of the graphitization of carbon nanofibers and the increased amount of nitrogen doping.

Hot isostatic pressure을 이용한 CN nanofiber의 구조 및 전계방출 특성 (Structure and field emission properties of carbon-nitrogen (CN) nanofibers obtained by hot isostatic pressure)

  • 이양두;;;;남산;이윤희;주병권
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2003년도 춘계학술대회 논문집 디스플레이 광소자분야
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    • pp.84-87
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    • 2003
  • Carbon-nitrogen (CN) nanofibers have been produced using a water cooled hot isostatic pressure (HIP) apparatus. The CN nanofibers were grown in random with the diameter of about 100-150nm and length over $10{\mu}m$. Emission properties of CN nanofibers were investigated for spacing, between anode and cathode, variation. Then turn-on fields about $1.4V/{\mu}m$. The time reliability and light emission test were carried out for above 100 hours. We suggest that CN nanofibers can be possibly applied to high brightness flat lamp because of low turn-on field and time reliability.

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산소환원반응을 위한 탄화철이 내재된 질소 도핑된 탄소의 제조 (Synthesis of Fe3C-Embedded Nitrogen Doped Carbon for Oxygen Reduction Reaction)

  • 이영근;안건형;안효진
    • 한국재료학회지
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    • 제28권11호
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    • pp.640-645
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    • 2018
  • The design of non-precious electrocatalysts with low-cost, good stability, and an improved oxygen reduction reaction(ORR) to replace the platinium-based electrocatalyst is significant for application of fuel cells and metal-air batteries with high energy density. In this study, we synthesize iron-carbide($Fe_3C$) embedded nitrogen(N) doped carbon nanofiber(CNF) as electrocatalysts for ORRs using electrospinning, precursor deposition, and carbonization. To optimize electrochemical performance, we study the three stages according to different amounts of iron precursor. Among them, $Fe_3C$-embedded N doped CNF-1 exhibits the most improved electrochemical performance with a high onset potential of -0.18 V, a high $E_{1/2}$ of -0.29 V, and a nearly four-electron pathway (n = 3.77). In addition, $Fe_3C$-embedded N doped CNF-1 displays exellent long-term stabillity with the lowest ${\Delta}E_{1/2}=8mV$ compared to the other electrocatalysts. The improved electrochemical properties are attributed to synergestic effect of N-doping and well-dispersed iron carbide embedded in CNF. Consequently, $Fe_3C$-embedded N doped CNF is a promising candidate for non-precious electrocatalysts for high-performance ORRs.

HIP에 의해 합성된 CN nanostructures의 구조 및 전계방출 특성 (Structure and Electron Emission Properties of CN Nanostructures Obtained by HIP Apparatus)

  • 오정근;이양두;문승일;양석현;이윤희;김남수;주병권
    • 한국전기전자재료학회논문지
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    • 제16권8호
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    • pp.723-730
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    • 2003
  • The CN(carbon nitrogen) nanofibers were formed by HIP(high isostatic pressure) process. From the field emission measurement, CN nanofibers shows an excellent characteristics of emitter, better than CNTs and carbon nanofibers. The structures obtained can be divided into three groups : bamboo-like fibers, corrugated structures and bead necklace-like fib res. Emission properties of CN nanofibers were investigated for spacing, between anode and cathode, variation. Turn-on fields was 1.4 v/$\mu\textrm{m}$. The time reliability and light emission test were carried out for about 100 hours. We suggest that CN nanofibers can be possibly applied to the high brightness flat lamp because of low turn-on field and time reliability

Effects of Surface Nitrification on Thermal Conductivity of Modified Aluminum Oxide Nanofibers-Reinforced Epoxy Matrix Nanocomposites

  • Kim, Byung-Joo;Bae, Kyong-Min;An, Kay-Hyeok;Park, Soo-Jin
    • Bulletin of the Korean Chemical Society
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    • 제33권10호
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    • pp.3258-3264
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    • 2012
  • Aluminum oxide ($Al_2O_3$) nanofibers were treated thermally under an ammonia ($NH_3$) gas stream balanced by nitrogen to form a thin aluminum nitride (AlN) layer on the nanofibers, resulting in the enhancement of thermal conductivity of $Al_2O_3$/epoxy nanocomposites. The micro-structural and morphological properties of the $NH_3$-assisted thermally-treated $Al_2O_3$ nanofibers were characterized by X-ray diffraction (XRD) and atomic force microscopy (AEM), respectively. The surface characteristics and pore structures were observed by X-ray photoelectron spectroscopy (XPS), Zeta-potential and $N_2$/77 K isothermal adsorptions. From the results, the formation of AlN on $Al_2O_3$ nanofibers was confirmed by XRD and XPS. The thermal conductivity (TC) of the modified $Al_2O_3$ nanofibers/epoxy composites increased with increasing treated temperatures. On the other hand, the severely treated $Al_2O_3$/epoxy composites showed a decrease in TC, resulting from a decrease in the probability of heat-transfer networks between the filler and matrix in this system due to the aggregation of nanofiber fillers.

저농도 이산화탄소 포집을 위한 초미세 탄소섬유 흡착제 제조 연구 (Preparation of Activated Carbon Fiber Adsorbent for Low Level CO2)

  • 김동우;정동원;조영민
    • 한국대기환경학회지
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    • 제33권1호
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    • pp.1-10
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    • 2017
  • Adsorption is a plausible technology using solid adsorbents for dry capture of carbon dioxide ($CO_2$). In general, narrow size distribution of tiny pores and surface chemical functionalities of solid adsorbents enhance the adsorption capacity of gaseous $CO_2$ molecules. In order to utilize the advantages of fibrous adsorbents, this work prepared activated carbon nanofibers (ACNFs) via the electrospinning process using a polymer precursor of polyacylonitrile (PAN). The spun fibers were 390 nm to 580 nm in thickness with an average surface area of $27.3m^2/g$. The surface structure was improved by a programmed thermal activation at $800^{\circ}C$ in $CO_2$ atmosphere. It was also found that the nitrogen-groups including pyrrole and pyridine were created during the activation facilitaing the selective adsorption as forming enhanced active sites. The finally obtained adsorption capacities were 2.74 mmol/g for pure $CO_2$ flow and 0.74mmol/g for 3000 ppm.

커피 폐기물 기반의 질소가 포함된 다공성 탄소 섬유의 제조 및 전기화학적 응용 (Synthesis of Nitrogen-Doped Porous Carbon Fibers Derived from Coffee Waste and Their Electrochemical Application)

  • 김동현;김민상;제갈석;김지원;김하영;추연룡;김찬교;심형섭;윤창민
    • 유기물자원화
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    • 제31권1호
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    • pp.57-68
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    • 2023
  • 본 연구에서는 커피 폐기물 기반의 질소가 포함된 다공성 탄소 섬유 형태로 제조하여 고에너지 EDLC용 탄소 소재로 활용하고자 하였다. 커피 폐기물은 분쇄과정을 거쳐 폴리비닐피롤리돈과 용매인 다이메틸폼아마이드에 혼합한 후 전기방사를 통해 커피 폐기물 기반의 섬유 형태(Bare-CWNF)의 물질로 만들었으며, 질소 분위기의 900℃에서 탄화를 진행하여 커피 폐기물 기반의 질소가 포함된 다공성 섬유 형태(Carbonized-CWNF)의 물질을 제조하였다. Carbonized-CWNF는 Bare-CWNF와 같이 섬유 형태를 유지하였으며 질소 함량 역시 유지되는 것을 확인하였다. 커피 폐기물의 탄화 탄소(Carbonized-CW)및 폴리아크릴로나이트릴 기반의 탄소섬유(Carbonized-PNF)를 Carbonized-CWNF와 -1.0-0.0V의 전압 범위에서 전기화학적 성능을 비교한 결과, Carbonized-CWNF가 가장 높은 비정전용량(123.8F g-1 @ 1A g-1)을 확보할 수 있었다. 이를 통해 커피 폐기물 기반의 질소가 함유된 다공성 탄소 섬유가 고에너지 EDLC(Electric double layer capacitor)용 전극으로 우수한 성능을 나타내는 것을 확인하였다. 최종적으로, 환경 오염의 원인이 되는 식물성 바이오매스 중 커피 폐기물을 활용하여 친환경성을 확보하였고, 식물성 바이오매스와 같은 폐기물을 슈퍼커패시터와 같은 고성능 에너지 저장 매체로의 탈바꿈 할 수 있는 가능성을 제시하였다.

전기방사 후 탄소화된 폴리아크릴로니트릴(PAN) 나노섬유의 수용액 중 붕소 흡착 (Aqueous Boron Adsorption on Carbonized Nanofibers Prepared from Electrospun Polyacrylonitrile(PAN) Mats)

  • 홍소희;한선기;김수영;원용선
    • 청정기술
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    • 제28권3호
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    • pp.210-217
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    • 2022
  • 붕소(Boron)은 희소자원으로 유리, 반도체 재료, 화약 등 다양한 용도로 사용되고 있는데, 우리나라의 경우 붕소를 전량 수입에 의존하고 있으며 전 세계 붕소 매장량과 현재 추세의 생산량을 고려하면 50년 이후 지상의 붕소는 고갈될 확률이 높다. 따라서 안정적 붕소의 공급을 위해 해수 내의 붕소를 회수할 수 있는 소재 및 공정의 개발이 요구된다. 이에 본 연구에서는 수용액 중 붕소를 회수하기 위한 소재로 전기방사 후 탄소화된 폴리아크릴로니트릴(polyacrylonitrile, PAN) 나노섬유를 도입하였다. 먼저 탄소섬유 표면의 붕소 흡착 기작을 이론적으로 구현하기 위해 범밀도함수이론(density functional method) 기반의 분자모델링 작업을 수행하였는데, 계산된 에너지도(energetics)에 따르면 붕소가 탄소섬유 표면에 흡착되는 화학반응이 가능한(viable) 것으로 판단되었다. 한편 전기방사로 제작된 PAN 나노섬유를 대기 중에서 안정화를 진행한 후 아르곤(Ar) 분위기에서 탄소화하였고 붕산 수용액에 담지시켰다. SEM과 Raman 분석을 통해 각각 전기방사와 탄소화가 잘 진행되었는지 확인하였고, XPS 분석을 통해 탄소섬유 표면에 질소가 잘 도핑되었는지 여부와 붕소의 흡착 여부를 확인하였다. 결과적으로 전기방사된 PAN으로부터 제작된 탄소섬유는 해수 내 붕소 회수에 사용될 수 있는 소재로 판단된다.