• 제목/요약/키워드: Composite nanofibers

검색결과 84건 처리시간 0.03초

KOH 활성화 효과에 의한 흑연나노섬유의 전기화학적 거동 (Effect of KOH Activation on Electrochemical Behaviors of Graphite Nanofibers)

  • 유혜민;민병각;이규환;변준형;박수진
    • 폴리머
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    • 제36권3호
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    • pp.321-325
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    • 2012
  • 본 연구에서는 화학적으로 활성 흑연나노섬유를 제조하여 그에 따른 전기화학적 거동을 확인하였다. 활성화제로 KOH를 사용하였으며, KOH와 흑연나노섬유의 비를 무게비로 각각 0, 1, 2, 4, 및 5로 처리하여 표면과 기공특성을 연구하였고, 그에 따른 전기화학적 거동을 살펴보았다. 활성화된 흑연나노섬유의 결정구조와 표면특성은 각각 X-선 회절분석법(XRD), 주사전자현미경(SEM) 분석방법을 이용하여 확인하였으며, 기공 특성은 비표면적 장치(BET)를 이용하였으며 질소흡착 등온선에 의해 조사하였다. 전기화학적 특성은 10 mV/s의 주사속도로 순환전류전압(cyclic voltammetry)을 통한 곡선으로 고찰하였으며 정전류법(galvanostatic method)으로 측정된 충방전 곡선을 통해 비축전용량을 계산하였다. 실험 결과로부터, 활성 흑연나노섬유의 전기화학적 거동은 KOH 양이 증가함에 따라 향상되었으며, 4 배 처리된 활성 흑연나노섬유가 최대의 비축전용량을 가진 것으로 나타났다. 이것은 KOH 활성화에 의해 활성 흑연나노섬유의 비표면적과 기공부피가 증가하기 때문인 것으로 사료된다.

기상성장 탄소나노섬유/에폭시 복합재료의 열적 및 기계적 특성에 관한 연구 (A Study on Thermal and Mechanical Properties of Vapor Grown Carbon Nanofibers-Reinforced Epoxy Matrix Composites)

  • 박수진;이은정;이재락
    • 폴리머
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    • 제29권5호
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    • pp.481-485
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    • 2005
  • 본 연구에서는 2관능성 에폭시 수지에 기상성장 탄소나노섬유(VGCNFs)를 0, 0.1, 0.5, 1.0 그리고 $2wt\%$ 함량 비로 첨가하여, 제조한 VGCNFs/에폭시 복합재료의 열적 및 기계적 특성을 고찰하고자 하였다. VGCNFs/에폭시 나노복합재료의 열적 특성은 TMA와 DMA로 알아보았으며, 기계적 특성은 만능 시험기와 낙하 충격 시험기 및 마찰$\cdot$마모 시험기를 통하여 관찰하였다. 실험 결과. VGCNFs의 함량이 증가할수록 열적 및 기계적 특성이 향상됨을 확인할 수 있었는데, 이는 현재의 복합재료 시스템에 있어서 VGCNFs와 에폭시 사이의 기계적 얽힘 현상의 향상을 가져오는 복합재료의 가교구조의 증가 때문이라 판단된다.

PP 분말/CNF 1 wt% 슬러리 복합체의 CNF 분산 및 물성에 대한 개질 PP의 영향 (Effect of Modification PP on the Physical Properties and CNF Dispersion of PP Powder/CNF 1 wt% Slurry Composite)

  • 김준석;김연철
    • 공업화학
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    • 제33권3호
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    • pp.284-288
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    • 2022
  • 폴리프로필렌(PP) 분말과 셀룰로오스 나노섬유(CNF) 1 wt% 슬러리 현탁액을 감압여과 및 오븐 건조한 후 이축압출기를 이용하여 PP 분말/CNF 1 wt% 슬러리 복합체를 제조하였다. PP는 곁가지 및 극성기가 도입된 개질 PP를 사용하였다. 곁가지는 디비닐벤젠을 이용하여 도입하였고 극성기는 말레인산무수물(MAH)을 이용하여 개질하였다. CNF의 분산성 및 복합체의 물성을 검토한 결과 PP 분말/CNF 1 wt% 슬러리로부터 제조한 복합체의 경우 CNF 분말로부터 제조한 복합체와 비교 시 인장강도 및 굴곡강도에서는 동등 이상 수준을 나타내는 것을 확인하였다.

Physical Properties of Graphite Nanofiber Filled Nylon6 Composites

  • Park, Eun-Ha;Joo, Hyeok-Jong
    • Carbon letters
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    • 제7권2호
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    • pp.87-96
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    • 2006
  • This paper describes the physical properties of filled Nylon6 composites resin with nano-sized carbon black particle and graphite nanofibers prepared by melt extrusion method. In improving adhesions between resin and fillers, the surface of the carbon filler materials were chemically modified by thermo-oxidative treatments and followed by treatments of silane coupling agent. Crystallization temperature and rate of crystallization increased with increases in filler concentration which would act as nuclei for crystallization. The silane treatments on the filler materials showed effect of reduction in crystallization temperature, possibly from enhancement in wetting property of the surface of the filler materials. Percolation transition phenomenon at which the volume resistivity was sharply decreased was observed above 9 wt% of carbon black and above 6 wt% of graphite nanofiber. The graphite nanofibers contributed to more effectively in an increase in electrical conductivity than carbon black did, on the other hand, the silane coupling agent negatively affected to the electrical conductivity due to the insulating property of the silane. Positive temperature coefficient (PTC) phenomenon, was observed as usual in other composites, that is, temperature increase results conductivity increase. The dispersity of the fillers were excellently approached by melt extrusion of co-rotational twin screw type and it could be illustrated by X-ray diffraction and SEM.

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수분산 폴리우레탄 및 탄소나노섬유 복합체의 물리적 특성 (Study on Physical Properties of Waterborne Polyurethane and Carbon Nanofiber Composites)

  • 임석대;고상철;곽이구
    • 한국기계가공학회지
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    • 제20권11호
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    • pp.24-29
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    • 2021
  • In this study, the electrical and mechanical properties of carbon polymer composites, which have been gradually increasing in use in various fields, were investigated, and environment-friendly carbon nanofiber/waterborne polyurethane composites were prepared. Carbon nanofibers (diameter = approximately 100-300 mm) were synthesized using a relatively simple CVD process, obtaining a carbon material for application in ultrathin planar heating films and EMP shielding films in the future. The carbon nanofiber was dispersed, and mixed with water-dispersible polyurethane using a dispersing aid. According to the carbon nanofiber mass ratio, 20%-60% polyurethane/carbon nanofiber composites were manufactured. At a concentration of approximately 20%, the percolation threshold was determined, and at a concentration of approximately 50%, an electrical conductivity greater than 0.1 S/cm was determined. Moreover, a sample having a concentration of up to 60% was evaluated to further understand the mechanical properties. It was observed that as the concentration of the carbon nanofibers increased, the elongation decreased.

Physicochemical properties and methane adsorption performance of activated carbon nanofibers with different types of metal oxides

  • Othman, Faten Ermala Che;Yusof, Norhaniza;Hasbullah, Hasrinah;Jaafar, Juhana;Ismail, Ahmad Fauzi;Nasri, Noor Shawal
    • Carbon letters
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    • 제24권
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    • pp.82-89
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    • 2017
  • In this study, composite PAN-based ACNFs embedded with MgO and $MnO_2$ were prepared by the electrospinning method. The resultant pristine ACNFs, ACNF/MgO and $ACNF/MnO_2$ were characterized in terms of their morphological changes, SSA, crystallinity and functional group with FESEM-EDX, the BET method, XRD and FTIR analysis, respectively. Results from this study showed that the SSA of the ACNF/MgO composite ($1893m^2g^{-1}$) is significantly higher than that of the pristine ACNFs and $ACNF/MnO_2$ which is 478 and $430m^2g^{-1}$, respectively. FTIR analysis showed peaks of 476 and $547cm^{-1}$, indicating the presence of MgO and $MnO_2$, respectively. The FESEM micrographs analysis showed a smooth but coarser structure in all the ACNFs. Meanwhile, the ACNF/MgO has the smallest fiber diameter ($314.38{\pm}62.42nm$) compared to other ACNFs. The presence of MgO and $MnO_2$ inside the ACNFs was also confirmed with EDX analysis as well as XRD. The adsorption capacities of each ACNF toward $CH_4$ were tested with the volumetric adsorption method in which the ACNF/MgO exhibited the highest $CH_4$ adsorption up to $2.39mmol\;g^{-1}$. Meanwhile, all the ACNF samples followed the pseudo-second order kinetic model with a $R^2$ up to 0.9996.

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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셀룰로오스 기반 생분해성 고분자 복합재의 물성 증가에 관한 연구 (A Study on Increased Properties of Cellulose-Based Biodegradable Polymer Composites)

  • 홍상준;이아정;주상현;신영은;박태훈
    • Composites Research
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    • 제36권2호
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    • pp.126-131
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    • 2023
  • 기존의 상용 플라스틱으로 인한 환경 오염에 대한 우려가 높아지면서 대체 재료로서 생분해성 고분자에 대한 연구가 주목을 받고 있다. 본 연구는 생분해성 열가소성 수지인 폴리 젖산에 유기 핵제의 도입으로 물성 강화 및 100% 생분해 가능한 나노복합재 개발을 목표로 한다. 그에 따라 무기 핵제의 대체재로 친환경 소재인 셀룰로오스 나노섬유를 채택하였다. 폴리 젖산 내 셀룰로오스 나노섬유의 균일한 분산을 위해 동결 건조 방식으로 나노화된 섬유 형상을 유지시켰으며, 이축압출기로 1차 교반을 진행하고, 사출 성형을 통해 이중 교반된 물성 시험용 시편을 제작하였다. 보강된 결정성을 확인하기 위해 시차주사 열량분석법을 사용하였고 1 wt%의 셀룰로오스 나노섬유가 보강재 및 핵제로서 작용하여 냉결정화온도가 약 14℃ 가량 감소하며, 결정화되는 정도 또한 증가한 것을 확인하였다. 본 연구는 기존 생분해성 고분자의 무기 핵제를 유기 나노소재로 대체함으로써 100% 생분해 가능한 친환경 나노복합재 개발하여 강화된 물성의 플라스틱 소재 개발을 위한 친환경적 대안을 제시한다.

CNT-PDMS Composite Thin-Film Transmitters for Highly Efficient Photoacoustic Energy Conversion

  • Song, Ju Ho;Heo, Jeongmin;Baac, Hyoung Won
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.297.2-297.2
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    • 2016
  • Photoacoustic generation of ultrasound is an effective approach for development of high-frequency and high-amplitude ultrasound transmitters. This requires an efficient energy converter from optical input to acoustic output. For such photoacoustic conversion, various light-absorbing materials have been used such as metallic coating, dye-doped polymer composite, and nanostructure composite. These transmitters absorb laser pulses with 5-10 ns widths for generation of tens-of-MHz frequency ultrasound. The short optical pulse leads to rapid heating of the irradiated region and therefore fast thermal expansion before significant heat diffusion occurs to the surrounding. In this purpose, nanocomposite thin films containing gold nanoparticles, carbon nanotubes (CNTs), or carbon nanofibers have been recently proposed for high optical absorption, efficient thermoacosutic transfer, and mechanical robustness. These properties are necessary to produce a high-amplitude ultrasonic output under a low-energy optical input. Here, we investigate carbon nanotube (CNT)-polydimethylsiloxane (PDMS) composite transmitters and their nanostructure-originated characteristics enabling extraordinary energy conversion. We explain a thermoelastic energy conversion mechanism within the nanocomposite and examine nanostructures by using a scanning electron microscopy. Then, we measure laser-induced damage threshold of the transmitters against pulsed laser ablation. Particularly, laser-induced damage threshold has been largely overlooked so far in the development of photoacoustic transmitters. Higher damage threshold means that transmitters can withstand optical irradiation with higher laser energy and produce higher pressure output proportional to such optical input. We discuss an optimal design of CNT-PDMS composite transmitter for high-amplitude pressure generation (e.g. focused ultrasound transmitter) useful for therapeutic applications. It is fabricated using a focal structure (spherically concave substrate) that is coated with a CNT-PDMS composite layer. We also introduce some application examples of the high-amplitude focused transmitter based on the CNT-PDMS composite film.

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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.