• 제목/요약/키워드: Porous nanofibers

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금속기지 나노복합재용 탄소나노섬유 일방향 배열을 위한 이종재 인발 연구 (The study of drawing on the heterogeneous materials for the unidirectional alignment of carbon nanofiber in metal matrix nanocomposite)

  • 백영민;이상관;엄문광;김병민
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2003년도 추계학술대회논문집
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    • pp.301-301
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    • 2003
  • In current study, Nanocomposites are reinforced with carbon nanofiber, carbon nanotube and SiC, etc. Since the nano reinforcements have the excellent mechanical, thermal and electrical properties compared with that of existing composites, it has lately attracted considerable attention in the various areas. Cu have been widely used as signal transmission materials for electrical electronic components owing to its high electrical conductivity. However, it's size have been limited to small ones due to its poor mechanical properties. Until now, strengthening of the copper alloy was obtained either by the solid solution and precipitation hardening by adding alloy elements or the work hardening by deformation process. Adding the alloy elements lead to reduction of electrical conductivity. In this aspect, if carbon nanofiber is used as reinforcement which have outstanding mechanical strength and electric conductivity, it is possible to develope Cu matrix nanocomposite having almost no loss of electric conductivity. It is expected to be innovative in electric conducting material market. The unidirectional alignment of carbon nanofiber is the most challenging task developing the cooer matrix composites of high strength and electric conductivity. In this study, the unidirectional alignment of carbon nanofibers which is used reinforced material are controlled by drawing process and align mechanism as well as optimized drawing process parameter are verified via numerical analysis. The materials used in this study were pure copper and the nanofibers of 150nm in diameter and of 10∼20$\mu\textrm{m}$ in length. The materials have been tested and the tensile strength was 75MPa with the elongation of 44% for the copper. it is assumed that carbon nanofiber behave like porous elasto-plastic materials. Compaction test was conducted to obtain constitutive properties of carbon nanofiber Optimal parameter for drawing process was obtained by analytical and numerical analysis considering the various drawing angles, reduction areas, friction coefficient, etc. The lower drawing angles and lower reduction areas provides the less rupture of co tube is noticed during the drawing process and the better alignment of carbon nanofiber is obtained.

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Synthesis and Characterization of Ruthenium Doped TiO2 Nanofibers

  • Park, Jung-Yeon;Lee, Deuk-Yong;Cho, Nam-Ihn;Oh, Young-Jei
    • 센서학회지
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    • 제20권2호
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    • pp.82-89
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    • 2011
  • Ruthenium(Ru)-doped $TiO_2$ nanofibers were prepared using electrospun Ru-$TiO_2$/poly(vinyl acetate) (PVAc) fibers and subsequent annealing for 1 h at temperatures in the range of $500^{\circ}C$ to $1000^{\circ}C$ in air. The properties of the Ru-$TiO_2$ fibers were characterized as a function of the Ru content and calcination temperature using X-ray diffraction, thermal gravimetry with differential scanning calorimetry, Fourier transform infrared spectroscopy, scanning electron microscopy, transmission electron microscopy, and viscometer, pycnometer and dynamic tensiometer measurements. Although the diameter of the fiber decreased slightly with increasing calcination temperature, no dramatic changes were observed with respect to the ruthenium content. The XRD and FT-IR results revealed that anatase phase and ruthenium metal began to be formed after calcination at temperatures above $500^{\circ}C$. Anatase and rutile phases and ruthenium metal coexisted in the fibers calcined above $600^{\circ}C$. No anatase phase was detected in the fibers containing ruthenium when they were calcined at $1000^{\circ}C$. The morphology of the fibers changed from smooth and uniform to porous with increasing temperature. The experimental results suggest that the calcination temperature and Ru content were influential in determining the morphology and structure of the fibers.

MF 적용을 위한 다공성 PAN 나노섬유막의 제조 (Preparation of Porous Polyacrylonitrile Nanofibers Membrane for the MF Application)

  • 안혜련;장원기;탁태문;변홍식
    • 멤브레인
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    • 제23권2호
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    • pp.112-118
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    • 2013
  • Polyacrylonitrile (PAN) 기질고분자를 용매인 dimethylformamide (DMF)에 녹인 후 전기방사법을 이용하여 polyacrylonitrile nanofibers membrane (PAM)을 제조하였으며, 정밀여과(microfiltration) 적용을 위해, 제조된 PAM 샘플들의 layer 수를 변화시켜, 기공크기를 조절하였다. 또한, 순수투과도(water-flux) 향상을 위해 poly (ethylene glycol) methyl ether methacrylate와 azobisisobutylronitrile (AIBN)을 이용하여 자유 라디칼 중합(free radical polymerization)을 통해 합성된 AN-PEGMA 공중합체를 PAN과 3:1의 비율로 혼합한 후 위와 같은 방법으로 다공성 막(PAM/APM)을 제조하였으며, FT-IR과 E.D.S 분석을 통해 PAM 샘플과 비교 분석하였다. Scanning Electron Microscope (SEM) 분석과 기공크기, 기공도 실험을 통해 균일한 직경(400~600 nm)과 균일한 기공특성(0.5~0.4 ${\mu}m$)을 가진 다공성 막이 제조되었음을 확인할 수 있었다. 순수투과도 측정을 통해 정밀여과용 막으로의 활용가능성을 조사하였으며, AN-PEGMA 공중합체가 도입된 PAM/APM의 경우 상용막인 polyvinylidenefluoride (PVdF)에 비해 순수투과도가 상대적으로 높은 값을 나타내었다. 위의 결과로부터 전기방사법으로 제조된 PAN 나노섬유막들은 정밀여과용 막으로서 충분한 활용가능성이 있다고 판단된다.

일방향 탄소나노섬유 강화 Cu 기지 나노복합재료용 중간재 제조에 관한 연구 (The study on the manufacturing intermediary materials for the carbon nanofiber reinforced Cu matrix noncomposite)

  • 백영민;이상관;엄문광
    • 한국복합재료학회:학술대회논문집
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    • 한국복합재료학회 2003년도 추계학술발표대회 논문집
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    • pp.46-49
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    • 2003
  • Cu have been widely used as signal transmission materials for electrical electronic components owing to its high electrical conductivity. However, it's size have been limited to small ones due to its poor mechanical properties, Until now, strengthening of the copper at toy was obtained either by the solid solution and precipitation hardening by adding alloy elements or the work hardening by deformation process. Adding the at toy elements lead to reduction of electrical conductivity. In this aspect, if carbon nanofiber is used as reinforcement which have outstanding mechanical strength and electric conductivity, it is possible to develope Cu matrix nanocomposite having almost no loss of electric conductivity. It is expected to be innovative in electric conduct ing material market. The unidirectional alignment of carbon nanofiber is the most challenging task developing the copper matrix composites of high strength and electric conductivity In this study, the unidirectional alignment of carbon nanofibers which is used reinforced material are controlled by drawing process in order to manufacture the intermediary materials for the carbon nanofiber reinforced Cu matrix nanocomposite and align mechanism as well as optimized drawing process parameters are verified via experiments and numerical analysis. The materials used in this study were pure copper and the nanofibers of 150nm in diameter and of $10~20\mu\textrm{m}$ In length. The materials have been tested and the tensile strength was 75MPa with the elongation of 44% for the copper it is assumed that carbon nanofiber behave like porous elasto-plastic materials. Compaction test was conducted to obtain constitutive properties of carbon nanofiber. Optimal parameter for drawing process was obtained by experiments and numerical analysis considering the various drawing angles, reduction areas, friction coefficient, etc Lower reduction areas provides the less rupture of cu tube is not iced during the drawing process. Optimal die angle was between 5 degree and 12 degree. Relative density of carbon nanofiber embedded in the copper tube is higher as drawing diameter decrease and compressive residual stress is occurred in the copper tube. Carbon nanofibers are moved to the reverse drawing direct ion via shear force caused by deformation of the copper tube and alined to the drawing direction.

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나노섬유 방사노즐 설계를 위한 거미 실크 방적장치의 생체모사 분석 (Biomimetic Analysis on the Spider Silk Apparatus for Designing the Nanofiber-spinning Nozzle)

  • 문명진;김훈;박종구
    • Applied Microscopy
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    • 제42권2호
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    • pp.67-76
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    • 2012
  • 고강성 나노섬유 생산이 가능한 전기방사장치 방사노즐의 설계를 위해 자연을 모방하는 공학적 방법론을 도입하여, 무당거미(Nephila clavata L.Koch) 대병상선의 토사관과 그 생체방적 시스템이 지닌 미세구조적 특성을 고해상도의 전자현미경 관찰을 통해 분석하였다. 자연계에서 가장 강도가 높은 드래그라인을 생성, 분비하는 대병상선의 토사관은 bullet type spigot을 통해 전방적돌기 표면에 개구되어 있었으며, 신축성 구조를 지닌 토사관 말단마디의 노즐을 통해 고체상의 실크가 생성되었다. 분비낭과 토사관 사이를 연결한 분비관은 루프를 형성한 후 방적돌기에 수납되었고, 분비관 내강의 직경은 점진적으로 축소되어 노즐을 통해 방사되는 실크의 직경은 펀넬 부위의 1/10 이하인 것으로 관찰되었다. 한편, 실크 중합과정에서 수분을 제거하기 위한 큐티클의 특수구조가 관찰되었는데, 분비낭의 펀넬 부위에서는 해면상 큐티클 구조가 그리고 분비관의 말단부에서는 비후된 subcuticle 구조와 함께 잘 발달된 상피의 미세융모 층이 확인되었다. 또한 분비관의 내강부 큐티클 표면에서 확인된 나선형 강선구조는 실크 전구물질의 신속한 유동을 촉진하는 장치일 것으로 해석되었다.

고분산성 Cr2O3 및 Co3O4 전이금속 나노입자 촉매가 기능화된 다공성 WO3 나노섬유를 이용한 구취진단용 화학센서 (Bio-inspired Cr2O3 and Co3O4 Nanoparticles Loaded Electrospun WO3 Nanofiber Chemical Sensor for Early Diagnosis of Halitosis)

  • 장지수;김상준;최선진;구원태;김일두
    • 센서학회지
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    • 제25권3호
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    • pp.223-228
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    • 2016
  • In this work, we prepared porous WO3 nanofibers (NFs) functionalized by bio-inspired catalytic $Cr_2O_3$ and $Co_3O_4$ nanoparticles as highly sensitive and selective $H_2S$ gas sensing layers. Highly porous 3-dimensional (3D) NFs networks decorated by well-dispersed catalyst NPs exhibited superior $H_2S$ gas response ($R_{air}/R_{gas}$ = 46 at 5 ppm) in high humidity environment (95 %RH). In particular, the sensors showed outstanding $H_2S$ selectivity against other interfering analytes (such as acetone, toluene, CO, $H_2$, ethanol). Exhaled breath sensors using $Cr_2O_3$ and $Co_3O_4$ catalysts-loaded $WO_3$ NFs are highly promising for the accurate detection of halitosis.

전기방사를 이용한 슈퍼캐퍼시터용 금속산화물/탄소나노섬유 복합체 (Electrospun Metal Oxide/Carbon Nanofiber Composite Electrode for Supercapacitor Application)

  • 양갑승;김보혜
    • 공업화학
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    • 제26권3호
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    • pp.239-246
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    • 2015
  • 나노 탄소재료를 복합화하면 기존 재료의 특성을 유지하면서 그 효율을 극대화할 수 있다. 여기에 이종원소를 부가하면 전기화학적인 특성이 디자인되므로, 나노 탄소재료의 복합화를 통해 한 종류의 나노 재료로부터 여러 강점을 얻을 수 있다. 특히 탄소나노섬유와 금속산화물을 복합화하면 탄소나노섬유의 전기이중층 뿐만 아니라 금속산화물의 산화 환원 반응을 이용하여 비축전 용량, 고율 특성, 수명 특성이 향상되고 높은 수준의 출력밀도가 유지되는 고용량 슈퍼 캐퍼시터용 전극 소재를 개발할 수 있다. 본 총설에서는 탄소의 고출력특성과 금속산화물의 고에너지 특성이 동시에 발현되는 금속산화물계 탄소나노섬유복합체의 제법과 응용에 대한 최신연구를 다루도록 하겠다.

Characteristics of the Catalysts Using Activated Carbon Nanofibers with KOH as the Support of Anode Catalyst for Direct Methanol Fuel Cell

  • Jung, Min-Kyung;Kim, Sang-Kyung;Jung, Doo-Hwan;Peck, Dong-Hyun;Shin, Jung-Hee;Shul, Yong-Gun;Yoon, Seong-Ho
    • Carbon letters
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    • 제8권1호
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    • pp.37-42
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    • 2007
  • Carbon nanofiber (CNF) grown catalytically was chemically activated with KOH to attain structural change of CNF. The structural changes of CNF through KOH activation were investigated by using BET and SEM. From the results of BET, it was found that KOH activation was effective to develop particular sizes of pores on the CNF surface, increasing the surface area of CNF. Activated CNF was applied as an anode catalyst support of fuel cell. The effects of different activation conditions including the activation temperature and the activation time on the specific surface area of the CNF activated with KOH were investigated to obtain appropriate structure as a catalyst support. The 60 wt% Pt-Ru catalyst prepared was observed by using TEM and XRD.

폴리비닐리덴 풀루오라이드로부터 제조된 다공성 탄소나노섬유 (Poly(vinylidene fluoride)-based Porous Carbon Nanofibers)

  • 정혜진;조성무;김동영;진병두;이도원
    • 한국수소및신에너지학회논문집
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    • 제16권4호
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    • pp.334-342
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    • 2005
  • 200-300 nm 직경을 지닌 폴리비닐리덴 플루오라이드 초극세 섬유를 전기방사법으로 제조하였다. 이들을 불응화시킨 후, $800-1800^{\circ}C$ 온도에서 탄화시켜 PVdF 계 탄소나노 섬유를 제조하여 구조 및 기공분석을 하였다. 이들은 20-30 nm 크기의 탄소입자로 이루어져 있으며 탄소나노입자는 1 nm이하의 슬릿형 나노기공을 지니고 있었다. 탄화온도가 증가함에 따라 비표면적은 $1500^{\circ}C$에서 $414\;m^2/g$로 감소하였으나, $1800^{\circ}C$에서는 $1300\;m^2/g$로 급격히 다시 증가하였으며 1 nm 이하의 나노기공만을 지닌 탄소섬유가 얻어졌다. 비표면적 및 기공특성과 수소저장특성을 관계를 조사하기 위하여 Magnetic Syspension Balance(MSB)를 사용한 중량법으로 평가한 이들의 수소저장능은 0.04-0.4wt%이었다.

열압착 온도가 전기방사 Polyacrylonitrile 분리막의 기계적 강도 및 물성치에 미치는 영향 (Effect of Thermal Pressing Temperature on the Mechanical and Material Properties of Electro-spun Polyacrylonitrile Nano-fibrous Separator)

  • 김민철;고태조;와카스 울 아리핀;동정
    • 한국기계가공학회지
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    • 제18권4호
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    • pp.109-116
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    • 2019
  • The mechanical deformation of a battery separator causes internal short-circuiting of the cathode - anode, which directly affects the explosion/ignition of batteries. To increase the mechanical properties of the separator fabricated by electro-spinning, use of a thermal pressing method is inevitable. Therefore, this research aims to maximize the mechanical strength of a porous separator by finding the proper thermal press temperatures given to Electro-spun Polyacrylonitrile (PAN) nanofibers. The different thermal press temperatures $25^{\circ}C$, $50^{\circ}C$, $75^{\circ}C$, and $100^{\circ}C$ were applied to the electro-spun fiber at 30 MPa pressure for one hour. The higher the temperature, the higher the resultant tensile strength; however, a higher temperature also lowered the strain and porosity. Thus, the membrane thermal pressed at $50^{\circ}C$ showed the best mechanical properties and the second highest porosity. Using the data, $50^{\circ}C$ was judged as the best thermal pressing temperature in terms of performance.