• Title/Summary/Keyword: 탄소전극

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Electrocatalytic Properties of Metal-dispersed Carbon Paste Electrodes for Reagentless L-lactate Biosensors (금속이 첨가된 탄소전극의 전기화학적 특성과 이를 이용한 L-lactate 바이오센서의 개발)

  • 윤현철;김학성
    • KSBB Journal
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    • v.11 no.4
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    • pp.489-496
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    • 1996
  • Metal dispersed carbon paste electrodes were fabricated, and their electrochemical properties were investigated. Among various metal dispersed carbons, platinum-dispersed carbon paste electrode showed most efficient electrocatalytic characteristics. The overpotential for the oxidation of NADH was significantly lowered in the platinum-dispersed carbon paste electrode, and catalytic current was also enhanced. Based on these electrocatalytic observations, L-lactate biosensor using L-lactate dehydrogenase was constructed to evaluate its performance in terms of sensitivity and stability.

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Electrochemical Characteristics of Highly Porous Carbon Prepared by Chemical Activation Method for EDLC (화학적 활성법으로 제조된 EDLC용 고다공성 탄소전극의 전기화학 특성)

  • Eo, Soo-Mi;Kim, Han-Joo;Oh, Seung-Mo;Park, Soo-Gil
    • Proceedings of the KIEE Conference
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    • 2005.07c
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    • pp.2010-2012
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    • 2005
  • Activated carbon was activated with chemical treatment to attain high surface area with porous structure. We have been considered activated carbon is the ideal material for high voltage electric double layer capacitor due to their high specific surface area, good conductivity and chemical stability. In this study we found that increase in electrochemical capacitance due to activated carbon. Also chemically activated carbon and water treatment have resulted larger capacitance and also exhibits better electrochemical behavior, and is about 15% more than in untreated state. The structural change in activated carbon through chemical treatment activation was investigated by using SEM and XRD. In this study, the dependence of the activation behavior with KOH in the micro structure of host materials will be discussed. Furthermore, the relation to the electric double layer capacitance, especially the specific capacitance per unit area, is also discussed.

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The nitrogen doping effect on the Cr-C:H films deposited by the hybrid deposition proces (하아브리드 공정을 통한 Cr-C:H 박막의 질소 도핑에 관한 연구)

  • Jo, Yong-Gi;Kim, Gang-Sam;Jeong, Dong-Geun
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2012.05a
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    • pp.192-192
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    • 2012
  • 플라즈마 CVD와 아크방전법을 혼합한 하이브리드 공정을 통하여 알곤과 메탄 그리고 질소를 인입하여 Cr을 타겟으로한 아크방전과 기판에 전극을 인가하는 방식의 플라즈마 CVD공정을 복합화하여 금속이 함유된 Cr-C:H 박막을 합성하고, 공정에 질소를 인입하여 박막에 질소를 도핑하여 부내식성과 전기적 전도성에 관한 고찰을 하였다. 내부식성은 동전위분극시험에서 $1{\mu}A/cm^2$을 보였고, 전기저항은 $1m{\Omega}-cm$ 이하로 측정되어 내식성과 전기전도성을 동시에 갖는 박막을 합성할 수 있었다. 내식성과 전기전도성에 대한 원인규명을 위하여 박막의 구조분석을 XPS, XRD, Raman 분석을 통하여 실시하였다. 흑연화 탄소(Graphitic carbon)와 금속콤포짓(Metal composite)은 내식성에 영향을 주었으며, 전도성물질의 percolation효과와 질소와 탄소의 단일 결합과정에서 생성되는 잉여전자에 의한 단일 결합(C-N) 분율이 전기전도성에 영향을 주었다.

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Impurity Analysis of Intermetallic Ti-51at% Al Powders Produced by Plasma Rotating Electrode Process (금속간화합물 Ti-51at%Al 분말 내의 불순물 분석)

  • Choi, Good-Sun;Lee, Dong-Hui
    • Korean Journal of Materials Research
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    • v.2 no.2
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    • pp.157-160
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    • 1992
  • Unusual surface impurity levels of PREPed Ti-51at%Al powders were analyzed using Auger spectroscopy and they were compared with these obtained from bulk starting electrode. Oxygen and carbon contents were varied very much with particle size. Powder surfaces were believed to be mainly covered by a complex compound containing Ti, Al, O, and C. The decrease in contents of oxygen and carbon of powders were attributed to the certain refining reaction of transfer type DC Ar plasma during the powder production.

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Simulation of the Stripe type CNT Field Emitter Triod Structure (띠 모양의 에미터를 가지는 탄소나노튜브 삼전극 전계방출 디스플레이 소자의 시뮬레이션)

  • Ryu, Seong-Ryong;Lee, Tae-Dong;Kim, Yong-Gil;Byun, Chang-Woo;Park, J.W.;Ko, S.W.;Chun, H.T.;Ko, N.J.
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2002.11a
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    • pp.510-513
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    • 2002
  • 띠모양의 에미터와 에미터와 정렬된 띠모양의 케이트 구멍을 가진 탄소나노튜브(CNT) 삼극 구조에 대하여 전계방출 시뮬레이션을 수행하였다. 전자방출은 주로 가장자리에서 발생하였으며 에미터와 게이트사이의 간격이 가까워지면 급격히 증가하였다. 전자방출 특성도 상당히 우수하였다. 한쪽 가장자리만을 사용한 삼극구조의 경우에는 방출된 전자의 궤적이 좁은 띠모양으로 형성되어 방향성이 매우 우수하게 나타났다. 띠모양의 에미터 및 게이트로 이어진 삼극구조는 제작이 용이하고 조립할 때 정렬이 쉬운 장점이 있다.

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Selective Elimination of Metallic Single-walled Carbon Nanotubes via Microwave Irradiation

  • Kim, Seong-Hwan;Kim, Yu-Seok;Song, U-Seok;Park, Jong-Yun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.492-492
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    • 2011
  • 단일벽 탄소나노튜브(Single-Walled Carbon Nanotubes, SWCNTs)는 매우 우수한 전기적, 광전자적 특성을 가지고 있어 차세대 나노 전자소자 물질로 각광받고 있다. 특히, 이들의 전기적 특성은 직경과 카이랄리티(chirality)에 따라 금속성(metallic)과 반도체성(semiconducting)으로 구분된다. 각 특성에 따라 금속성은 투명전극, 반도체성은 전계효과 트랜지스터(CNT-FET)로 활용가능성이 높다. 하지만, 일반적으로 단일벽 탄소나노튜브는 이 두 가지의 특성이 혼재되어 합성되기 때문에, 그들의 선택적 분리는 나노튜브 기반 전자소자 응용을 위해 매우 중요한 과정 중 하나이다. 최근에는 반응 가스를 이용한 선택적 제거, 밀도차를 이용한 원심분리법(density gradient ultracentrifugation) 등 다양한 방법들이 보고된 바 있다. 본 연구는 대기 중에서 마이크로웨이브 조사하여 금속성 나노튜브만을 선택적으로 제거하였다. 마이크로웨이브 조사는 CVD 방법과 전기 방전법으로 성장된 단일벽 탄소나노튜브에 800W로 조사 시간을 변화하며 수행하였다. 실험 결과, 조사 시간이 증가할수록 두 종류의 나노튜브에서 반도체성 나노튜브는 남아있는 반면 금속성 나노튜브는 점차 제거되었다. 이러한 원인은 각 전기적 특성에 따른 유전상수 차이에 의하여 기인한 것이다. 전기적 특성과 결정성은 라만 분광법(Raman spectroscopy)을 통하여 분석하였으며, 직경 및 분산정도는 주사전자현미경(scanning electron microscope), 투과전자현미경(tunneling electron microscope)으로 관찰하였다.

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Metal Oxides Decorated Carbon Nanotube Freestanding Electrodes for High Performance of Lithium-sulfur Batteries (고성능 리튬-황 전지를 위한 금속산화물을 첨가한 탄소나노튜브 프리스탠딩 전극)

  • Yun Jung Shin;Hyeon Seo Jeong;Eun Mi Kim;Tae Yun Kim;Sang Mun Jeong
    • Korean Chemical Engineering Research
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    • v.61 no.3
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    • pp.426-438
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    • 2023
  • Lithium-sulfur batteries, recently attracting attention as next-generation batteries, have high energy density but are limited in application due to sulfur's insulating properties, shuttle phenomenon, and volume expansion. This study used an economical and simple vacuum filtration method to prepare a freestanding electrode without a binder and collector. Carbon nanotubes (CNTs) are used to improve the electrical conductivity of sulfur, where CNT also acts as both collector and conductor. In addition, metal oxides (MOx, M=Ni, Mg), which are easy to adsorb lithium polysulfide, are added to the CNT/S electrode to suppress the shuttle reaction in lithium-sulfur batteries, which is a result of suppressing the loss of active sulfur material due to the excellent adsorption of lithium polysulfide by metal oxides. The MOx@CNT/S electrode exhibited higher capacity characteristics and cycle stability than the CNT/S electrode without metal oxides. Among the MOx@CNT/S electrodes, the NiO@CNT/S electrode displayed a high discharge capacity of 780 mAh g-1 at 1 C and an extreme capacity decrease to 134 mAh g-1 after 200 cycles. Although the MgO@CNT/S electrode exhibited a low discharge rate of 544 mAh g-1 in the initial cycle, it showed good cycle stability with 90% of capacity retention up to 200 cycles. Further, to achieve high capacity and cycle stability, the Ni0.7Mg0.3O@CNT/S electrode, mixed with Ni:Mg in the ratio of 0.7:0.3, manifested an initial discharge rate of 755 mAh g-1 (1 C) and a capacity retention rate of more than 90% after 200 cycles. Therefore, applying binary metal oxides to CNT/S provides a freestanding electrode for developing economical and high-performance Li-S batteries, effectively improving lithium polysulfide's high capacity characteristics and dissolution.

Effect of Lithium Bis(oxalate)borate as an Electrolyte Additive on Carbon-coated SiO Negative Electrode (탄소가 코팅된 일산화규소(SiO) 음극에서 전해질 첨가제로서 Lithium Bis(oxalato)borate의 영향)

  • Kim, Kun Woo;Lee, Jae Gil;Park, Hosang;Kim, Jongjung;Ryu, Ji Heon;Kim, Young-Ugk;Oh, Seung M.
    • Journal of the Korean Electrochemical Society
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    • v.17 no.1
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    • pp.49-56
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    • 2014
  • As an electrolyte additive, the effects of lithium bis(oxalate)borate (LiBOB) on the electrochemical properties of a carbon-coated silicon monoxide (C-coated SiO) negative electrode are investigated. The used electrolyte is 1.3M $LiPF_6$ that is dissolved in ethylene carbonate (EC), fluoroethylene carbonate (FEC), and diethyl carbonate (DEC) (5:25:70 v/v/v) with or without 0.5 wt. % LiBOB. In the LiBOB-free electrolyte, the film resistance is not so high in the initial period of cycling that lithiation is facilitated to generate the crystalline $Li_{15}Si_4$ phase. Due to repeated volume change that is caused by such a deep charge/discharge, cracks form in the active material to cause a resistance increase, which eventually leads to capacity fading. When LiBOB is added into the electrolyte, however, more resistive surface film is generated by decomposition of LiBOB in the initial period. The crystalline $Li_{15}Si_4$ phase does not form, such that the volume change and crack formation are greatly mitigated. Consequently, the C-coated SiO electrode exhibits a better cycle performance in the later cycles. At an elevated temperature ($45^{\circ}C$), wherein the effect of film resistance is less critical, the alloy ($Li_{15}Si_4$ phase) formation is comparable for the LiBOB-free and added cell to give a similar cycle performance.