• 제목/요약/키워드: Carbon nanofibers

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Improvement in Cycle Characteristics using PVP Based Direct Carbon Coating During High-Rate Charge and Discharge of Li[Ni0.93Co0.07]O2 Nanofibers: Application for Lithium Secondary Batteries

  • Hae In Kim;Hyun Ju Jang;Thuy Thi Bich Tran;Jong-Tae Son;Eui Jeong Park
    • Journal of Electrochemical Science and Technology
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    • 제14권2호
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    • pp.139-144
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    • 2023
  • In this study, carbon-coated porous nanofibers were prepared via electrospinning and the performance of Li[Ni0.93Co0.07]O2 (NC) synthesized by electrospinning (E-NC) and co-precipitation (C-NC) was compared. E-NC had a discharge capacity of 206 mAh g-1 at 0.1C (17 mA/g), which is 10% higher than that of C-NC (189.2 mAh g-1). E-NC shows a high-rate performance of 118.32 mAh g-1 (61.7%) at 5C (850 mA/g), which is 50% higher than that of C-NC (78.22 mAh g-1 = 45.7%). Charge transfer of the carbon-coated porous nanofiber E-NC decreased by 35% compared to C-NC after 20 cycles as observed using electrochemical impedance spectroscopy. The results of this study show that the nanofiber structure with carbon coating shortens the Li-ion diffusion path, improves electrical conductivity, resulting in excellent rate performance.

나노 탄소재료를 이용한 에너지 저장형 슈퍼커패시터용 전극 제조 (The study of electrode for energy storaging at supercapacitor system using nano carbon fiber material)

  • 황성익;최원경;;;박수길
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2004년도 추계학술대회 논문집 Vol.17
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    • pp.683-686
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    • 2004
  • In recent years, the supercapacitor and hybrid capacitor have related with substitutional energy source focused of many scientists because of their usage in power sources for electric vehicles, computers and other electric devices. The storage energy of electrical charge is based on electrostatic interactions in the electric double layer at the electrode/electrolyte interface, resulting in high rate capability and long cycle performance compared with batteries based on Faradaic electrode reactions. So we have been considered to carbon nanofibers as the ideal material for supercapacitors due to their high utilization of specific surface area, good conductivity, chemical stability and other advantages. In this work, we aimed to find out that the capacitance have increased because of electrochemical capacitance to provide by carbon nanofibers. Also carbon nanofibers based on chemical method and water treatment have been resulted larger capacitances and also exhibit better electrochemical behaviors about 15% than before of nontreated state. And also optical observations with treated and nontrteated carbon nanofibers discussed by the TEM, SEM, EDX, BET works and specific surface area analyzer. Their results also focused on the surface area of electrode and electrical capacitance was also improved by the effect of surface treatments.

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활성탄소에 담지된 백금나노입자의 전기화학적 거동에 대한 그라파이트 나노섬유 첨가효과 (Effect of Graphite Nanofibers Addition on the Electrochemical Behaviors of Platinum Nanoparticles Deposited on Activated Carbons)

  • 조원빈;오미순;김주현;김석
    • Korean Chemical Engineering Research
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    • 제48권6호
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    • pp.673-678
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    • 2010
  • 본 연구에서는 탄소지지체로 활성탄소를 주요재료로 사용하고 여기에 그라파이트 나노섬유(graphite nanofibers)를 함량별로 혼합시킨 후, 백금전구체를 포함하는 용액에 분산시키고, 화학적인 환원반응을 통해서 백금입자를 담지하여 제조하였다. 첨가하는 GNF의 함량을 조절하면서, 백금입자의 결정 크기와 담지함량을 제어할 수 있었다. GNF 함량이 15 wt%인 혼합지지체를 사용한 백금입자의 경우, 최대의 전기활성 특성을 나타내었다. 또한, GNF 함량을 0%에서 15%로 증가시킴에 따라 전기전도도가 $10^{-4}S/cm$에서 $10^{-1}S/cm$로 증가하였다. 첨가제 GNF를 10%까지 도입한 경우, 백금입자의 전기활성은 크게 증가하는 경향을 보이지만, 15%에서는 그 증가경향이 작아져서 포화되는 현상이 보였다. 이런 결과는 전기활성도의 변화가 혼합지지체의 전기전도도 변화와 백금이 담지된 함량, 그리고, 담지형태와 관련성이 있음을 알 수 있었다.

화염을 이용한 탄소나노튜브와 나노섬유의 합성에 미치는 촉매금속 및 기판온도의 영향 (Effects of Catalyst Metal and Substrate Temperature on a Flame Synthesis of Carbon Nanomaterials)

  • 이교우;정종수;황정호
    • 한국연소학회지
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    • 제8권2호
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    • pp.27-33
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    • 2003
  • Synthesis of carbon nanomaterials on a metal substrate by an ethylene fueled inverse diffusion flame was illustrated. Stainless steel plates were used for the catalytic metal substrate. The effects of catalyst metal particles were investigated through $Fe(NO_3){_3}$ (ferric nitrate, nonahydrate) and $Ni(NO_3){_2}$ (nickel nitrate, hexahydrate). Carbon nanotubes and nanofibers with diameters of $30{\sim}70nm$ were found on the substrate for the case of using SUS304 substrates only and using them with metal nitrates. In case of using metal nitrates, due to the easy activation of the metal particles, the formation and growth of carbon nanomaterials were occurred in the lower temperature region than that of using SUS304 substrates only.

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Non-Functionalized Water Soluble Carbon Nanotubes

  • ;최정일;임연민;김유나;김창준;강상수;남태현;강동우
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2010년도 춘계학술발표대회
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    • pp.43.2-43.2
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    • 2010
  • Most of previous methods for the dispersions of carbon nanotube were achieved by various chemical functionalizations. In this study, however, we generated highly water dispersed carbon nanofibers by altering intrinsic materials property only, such as crystallinity of outer layers of carbons, without chemical treatment. Although most of chemical functionalization requires acidic treatment and may degrade their chemical functions by interacting with other molecules, suggested strategy demonstrated a simple but chemically non-degradable carbon nanotube for the application of various medical applications, such as drug delivery system and implant coatings.Furthermore, protein adsorption was increased by the reducing surface crystalinity since outer activated surface induced more adsorption of oxygen and eventually greater protein adsorption than pristine carbon nanofibers.

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Synthesis of Carbon Nanofibers Based on Resol Type Phenol Resin and Fe(III) Catalysts

  • Hyun, Yu-Ra;Kim, Hae-Sik;Lee, Chang-Seop
    • Bulletin of the Korean Chemical Society
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    • 제33권10호
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    • pp.3177-3183
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    • 2012
  • The carbon nanofibers (CNFs) used in this study were synthesized with an iron catalyst and ethylene as a carbon source. A concentration of 30 wt % iron(III) acetylacetonate was dissolved in resol type phenol resin and polyurethane foam was put into the solution. The sample was calendered after being cured at $80^{\circ}C$ in air for 24 h. Stabilization and carbonization of the resol type phenol resin and reduction of the $Fe^{3+}$ were completed in a high-temperature furnace by the following steps: 1) heating to $600^{\circ}C$ at a rate of $10^{\circ}C/min$ with a mixture of $H_2/N_2$ for 4 h to reduce the $Fe^{3+}$ to Fe; 2) heating to $1000^{\circ}C$ in $N_2$ at a rate $10^{\circ}C/min$ for 30 minutes for pyrolysis; 3) synthesizing CNFs in a mixture of 20.1% ethylene and $H_2/N_2$ at $700^{\circ}C$ for 2 h using a CVD process. Finally, the structural characterization of the CNFs was performed by scanning electron microscopy and a synthesis analysis was carried out using energy dispersive spectroscopy and X-ray photoelectron spectroscopy. Specific surface area analysis of the CNFs was also performed by $N_2$-sorption.

Ketjenblack 전도제 혼합량에 따른 EDLC용 탄소나노섬유 전극의 특성 (Characterization of Carbon Nanofiber Electrode with different Ketjenblack Conducting Material Mixing Amount Using EDLC)

  • 최원경
    • 한국수소및신에너지학회논문집
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    • 제19권2호
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    • pp.163-170
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    • 2008
  • Carbon nanofibers with nano-sized structures were evaluated as a active material using supercacitor electrode which could store electrochemical energy reversibly. A feasibility of EDLC electrode was estimated with specific surface area measurement by BET method and mesopore structure of carbon nanofiber surface could be explained electrochemical absorption-desorption in aqueous electrolyte. A capacitance of carbon nanofiber electrode was increased gradually, depending on the ratio of Ketjenblack as a conducting material. Ketjen Black $20{\sim}25\;wt.%$ ratio in electrode was observed a suitable amount of conducting material by cyclic voltametry results.

PVDF 접합제 농도 변화와 탄소나노섬유 전극의 전기화학적 특성 (Electrochemical Properties of Carbon Nanofiber Electrode with Different PVDF Binder Concentration)

  • 최원경;조태환
    • 한국수소및신에너지학회논문집
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    • 제18권4호
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    • pp.446-451
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    • 2007
  • Physicochemical properties of carbon nanofibers were evaluated as a supercacitor electrode materials could store electrochemical energy reversibly. A capacitance of carbon nanofiber electrode was increased gradually, depending on the PVDF binder ratio. A feasibility of EDLC electrode was estimated with specific surface area measurement by BET method and mesopore structure of carbon nanofiber surface could be explained electrochemical absorption-desorption in aqueous electrolyte. PVDF 5 wt.% ratio in electrode was observed a suitable binder amount by CV result.

Effect of Graphitic Nanofibers on Interfacial Adhesion and Fracture Toughness of Carbon Fibers-reinforced Epoxy Composites

  • Kim, Seong-Hwang;Park, Soo-Jin
    • Composites Research
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    • 제34권2호
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    • pp.82-87
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    • 2021
  • The mechanical properties of carbon fiber-reinforced epoxy composites (CFRPs) are greatly dependent on the interfacial adhesion between the carbon fibers and the epoxy matrix. Introducing nanomaterial reinforcements into the interface is an effective approach to enhance the interfacial adhesion of CFRPs. The main purpose of this work was to introduce graphitic nanofiber (GNFs) between an epoxy matrix and carbon fibers to enhance interfacial properties. The composites were reinforced with various concentrations of GNFs. For all of the fabricated composites, the optimum GNF content was found to be 0.6 wt%, which enhanced the interlaminar shear strength (ILSS) and fracture toughness (KIC) by 101.9% and 33.2%, respectively, compared with those of neat composites. In particular, we observed a direct linear relationship between ILSS and KIC through surface free energy. The related reinforcing mechanisms were also analyzed and the enhancements in mechanical properties are mainly attributed to the interfacial interlocking effect. Such an effort could accelerate the conversion of composites into high performance materials and provide fundamental understanding toward realizing the theoretical limits of interfacial adhesion and mechanical properties.