• 제목/요약/키워드: Electrode performance.

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산화구리 나노입자가 분산된 CNT fiber 유연 전극 기반의 글루코스 검출용 비효소적 전기화학센서 (Electrochemical Sensor for Non-Enzymatic Glucose Detection Based on Flexible CNT Fiber Electrode Dispersed with CuO Nanoparticles)

  • 송민정
    • Korean Chemical Engineering Research
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    • 제61권1호
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    • pp.52-57
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    • 2023
  • 본 연구는 고성능 유연 전극 소재 개발을 위한 기초 연구로, 유연 전극 소재의 성능을 향상시키기 위해 금속 산화물 CuO nanoparticles (CuO NPs)를 도입하여 탄소나노튜브 섬유(carbon nanotube fiber; CNT fiber) 표면 위에 전기화학적 증착시켜 CNT fiber/CuO NPs 전극을 합성하고, 이를 전기화학적 비효소 글루코스 센서에 적용하였다. 이 전극의 표면 및 elemental composition 분석은 주사전자 현미경(SEM)과 에너지분산형 분광분석법(EDS)을 이용하였으며, 전극의 전기화학적 특성 및 글루코스에 대한 센싱 성능은 순환전압 전류법(CV)과 전기화학 임피던스법(EIS), 시간대전류법(CA)을 통해 조사되었다. CNT fiber/CuO NPs 전극은 CNT fiber의 우수한 특성과 함께 CuO NPs 도입에 따른 약 2.6배의 유효 전극면적(active surface area) 증가 효과와 11배 정도의 향상된 전자전달(electron transfer) 특성 및 우수한 전기적 촉매 활성(electrocatalytic activity) 덕분에 CNT fiber 유연 기반 전극의 글루코스 검출에 대한 성능이 개선되었다. 따라서, 본 연구를 기반으로 다양한 나노구조체를 활용한 고성능 유연 전극 소재 개발이 기대된다.

광단속센서를 이용한 와이어장력 제어장치 및 마이크로전극 제조 (Wire-tension Control System using Photo-interrupter Sensor and Micro-electrode Fabrication)

  • 강명창;이창훈;김남경
    • 한국기계가공학회지
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    • 제12권3호
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    • pp.28-35
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    • 2013
  • Micro electrical discharge machining (EDM) as a non-contact machining process is very effective for micromachining with a thin electrode because of its low machining reaction force. The micro-electrode machining device has the advantage of maintaining high precision through the whole processes and uses a feeding wire in the thin electrode tool manufacturing process. This study describes the design and evaluation of a micro-electrode machining device using optical photo-interrupter. The electrode was fabricated by reverse electrical discharge machining. The performance of designed system was evaluated to measure tension force according to feed speed of wire. This system for micro electrode fabrication proves the feasibility in the micro-EDM process of the micro holes and parts for industrial applications.

전기화학적 소독에 의한 Legionella pneumophila 불활성화 (Inactivation of Legionella pneumophila by Electrochemical Disinfection)

  • 박영식;김동석
    • 한국물환경학회지
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    • 제23권5호
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    • pp.613-619
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    • 2007
  • This study has carried out a performance of dimensionally stable anode for the purpose of disinfection of Legionella pneumophila in water. Three kinds of electrode were prepared by plating and thermal deposition, which were coated by the oxides of Pt, Ru and Ir on Ti metal surface, respectively. The order of disinfection performance for Legionella pneumophila was Ru/Ti > Ir/Ti > Pt/Ti. Free Cl and $ClO_2$ generation of Ir/Ti electrode was higher than that of two electrodes. However, the concentrations of generated $H_2O_2$ and $O_3$ of the Ru/Ti electrode were highest among the three electrodes. The higher NaCl concentration was, the more oxidants was generated and disinfection effect was increased. However, optimum NaCl dosage was 0.0125% due to the regulation on the conductivity and $Cl^-$ concentration for the cooling water quality of air conditioning and refrigeration equipment. With the increase of current, oxidants was more generated and following disinfection effect was increased. The increase of electrode distance reduced oxidants generation due to the low electric power, and their disinfection effect was decreased accordingly.

Model Prediction and Experiments for the Electrode Design Optimization of LiFePO4/Graphite Electrodes in High Capacity Lithium-ion Batteries

  • Yu, Seungho;Kim, Soo;Kim, Tae Young;Nam, Jin Hyun;Cho, Won Il
    • Bulletin of the Korean Chemical Society
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    • 제34권1호
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    • pp.79-88
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    • 2013
  • $LiFePO_4$ is a promising active material (AM) suitable for use in high performance lithium-ion batteries used in automotive applications that require high current capabilities and a high degree of safety and reliability. In this study, an optimization of the electrode design parameters was performed to produce high capacity lithium-ion batteries based on $LiFePO_4$/graphite electrodes. The electrode thickness and porosity (AM density) are the two most important design parameters influencing the cell capacity. We quantified the effects of cathode thickness and porosity ($LiFePO_4$ electrode) on cell performance using a detailed one-dimensional electrochemical model. In addition, the effects of those parameters were experimentally studied through various coin cell tests. Based on the numerical and experimental results, the optimal ranges for the electrode thickness and porosity were determined to maximize the cell capacity of the $LiFePO_4$/graphite lithium-ion batteries.

Preparation and Characterization of Ionic Liquid-based Electrodes for High Temperature Fuel Cells Using Cyclic Voltammetry

  • Ryu, Sung-Kwan;Choi, Young-Woo;Kim, Chang-Soo;Yang, Tae-Hyun;Kim, Han-Sung;Park, Jin-Soo
    • 전기화학회지
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    • 제16권1호
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    • pp.30-38
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    • 2013
  • In this study, a catalyst slurry was prepared with a Pt/C catalyst, Nafion ionomer solution as a binder, an ionic liquid (IL) (1-butyl-3-methylimidazolium tetrafluoroborate), deionized water and ethanol as a solvent for the application to polymer electrolyte fuel cells (PEFCs) at high-temperatures. The effect of the IL in the electrode of each design was investigated by performing a cyclic voltammetry (CV) measurement. Electrodes with different IL distributions inside and on the surface of the catalyst electrode were examined. During the CV test, the electrochemical surface area (ESA) obtained for the Pt/C electrode without ILs gradually decreased owing to three mechanisms: Pt dissolution/redeposition, carbon corrosion, and place exchange. As the IL content increased in the electrode, an ESA decrement was observed because ILs leaked from the Nafion polymer in the electrode. In addition, the CVs under conditions simulating leakage of ILs from the electrode and electrolyte were evaluated. When the ILs leaked from the electrode, minor significant changes in the CV were observed. On the other hand, when the leakage of ILs originated from the electrolyte, the CVs showed different features. It was also observed that the ESA decreased significantly. Thus, leakage of ILs from the polymer electrolyte caused a performance loss for the PEFCs by reducing the ESA. As a result, greater entrapment stability of ILs in the polymer matrix is needed to improve electrode performance.

수용성 고분자 젤 전해질을 이용한 전기이중층 커패시터 의 개발 (Development of EDLC using aqueous polymeric gel electrolytel)

  • 오길훈;김한주;최원경;박수길
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2001년도 추계학술대회 논문집
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    • pp.581-584
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    • 2001
  • For the first time, a totally solid state electric double layer capacitor has been fabricated using an alkaline polymer electrolyte and an activated carbon powder as electrode material. The polymer electrolyte serves both as separator as well as electrode binder. The capacitor has a three-layer structure; electrode-electrolyte-electrode. A cyclic voltammetry and constant current discharge have been used for the determination of the electro chemical performance of capacitors.

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알칼리막 연료전지용 전극의 제조방법에 따른 전기화학적 특성 분석 (Electrochemical Characteristics of Electrode by Various Preparation Methods for Alkaline Membrane Fuel Cell)

  • 육은성;이혜진;정남기;신동원;배병찬
    • 전기화학회지
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    • 제24권4호
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    • pp.106-112
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    • 2021
  • 최근에 알칼리막연료전지의 막전극접합체에서 이오노머에 의한 촉매 피독에 대한 연구 결과들이 보고되고 있다. 본 연구에서는 이를 해결하기 위해서 전극 제조 시에 사용되는 유기용매의 성분을 조절하여 막전극접합체의 성능을 향상시키고자 하였다. Fuma-Tech사의 상용 이오노머를 사용하여 N-Methyl-2-pyrrolidone (NMP)와 Ethylene glycol (EG)를 이용한 4가지의 혼합용매를 제조하였다. 혼합용액을 이용하여 제조된 캐소드 전극은 NMP기반의 상용 이오노머에 비해서 약 36%의 향상된 분극성능을 나타내었다. 이것은 용매의 종류에 따른 이오노머의 분산성 차이에 따른 결과로 추측되며 비균일성 분포의 이오노머가 전극의 성능을 향상시키는 것으로 관찰되었다. 이에 관한 원인분석을 위해서 막전극 접합체의 고주파 저항, 내부저항 보정 분극곡선, Tafel 기울기, Mass activity 및 임피던스 분광법을 사용하여 특성 분석을 실시하였다. 이오노머의 비용매의 비율 증가에 따라서 캐소드 전극 성능이 개선되는 것을 확인하였고, 이것은 이오노머의 입도 분포에 따라서 촉매의 피독이 감소되는 결과로 판단된다.

인산형 연료전지(PAFC)의 전극 성능 향상을 위한 미세다공층(MPL)의 적용 (Application of Micro Porous Layer (MPL) for Enhance of Electrode Performance in Phosphoric Acid Fuel Cells (PAFCs))

  • 하지훈;강성민;오유관;백동현
    • 전기화학회지
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    • 제27권1호
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    • pp.32-39
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    • 2024
  • 인산형 연료전지(PAFC)의 전기화학적 성능에 영향을 미치는 핵심 부품은 전극 촉매, 전해질 매트릭스 및 기체확산층(GDL) 등이 있다. 또한 전극의 성능 향상을 위해 GDL 위에 미세다공층(MPL)을 적용하는 방법도 있다. MPL은 주로 고분자 전해질 연료전지(PEMFC)에서 전극 내부의 수분 관리와 접촉 저항 저감을 위한 중간 완화층 역할을 한다. 본 연구에서는 MPL이 PAFC 전극의 성능에 미치는 영향을 확인하기 위해 MPL이 없는 GDL과 MPL을 적용한 GDL로 전극을 제작하여 단위전지의 내부 저항과 분극 곡선을 서로 비교하였다. 본 실험 결과에서 MPL을 적용하였을 때 전극의 출력 밀도가 170.2 mW/cm2에서 192.1 mW/cm2으로 향상되었다. MPL은 PEMFC에서와 같이 PAFC 전극에서도 매트릭스와 전극에서 액체 전해질과 물 관리에 효과적으로 작용하고 전극 내부의 물질 전달이 향상되어 전극 성능이 향상된 것으로 판단된다. 또한, MPL의 적용으로 PAFC 전극의 내부 저항이 감소하였고 장기 운전시에도 안정적인 성능을 지속적으로 유지하는 결과로부터 PAFC 전극에도 MPL을 적용하면 전극 성능을 향상시킬 수 있음을 확인할 수 있었다.

전기적 세포융합기의 제작 및 성능 개선을 위한 기초 연구 (A Basic Study for the Development of Electrio-Cell Fusion Device and Performance-Improvement)

  • 이상훈
    • 대한의용생체공학회:의공학회지
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    • 제15권1호
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    • pp.1-8
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    • 1994
  • Electrofusion of cabbage protoplasts was performed with a developed equipment which consists of a parallel wire electrode, a AC field generator, and a pulse generator. Exposure of protoplasts to an alternating current field of 450 KHz causes attraction to each other which leads to chains of protoplasts extending from the electrode. Intra-specific protoplast fusion was effectively induced within the pearl chains by the additional application of a single high-intensity DC square wave pulse of 1 KV/cm for 1-3 msec. To improve the performance, micro fusion electrode fabricated from the semiconductor technology and microcontroller based field an, d pulse generator was proposed. The viability of protoplasts after an application of electric field at optimum condition was reduced by only 5 % compared with that of pre-application. A prototype of fusion electrode, which consists of insulator-structure, was successfully fabricated by using photosensitive polyimide.

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Studies on Electrochemical properties of Lithium/Oxyhalide Cell: Electrocatalytic Effects on the Reduction of Thionyl Chloride

  • Kim Woo Seong;Choi Yong-Kook;Chjo Ki-Hyung
    • Bulletin of the Korean Chemical Society
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    • 제15권6호
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    • pp.456-460
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    • 1994
  • Catalytic effects of various cobalt phenylporphyrin compounds on the reduction of thionyl chloride at glassy carbon electrode have been evaluated by determining kinetic parameters with cyclic voltammetric techniques. The concentration of catalysts and the electrode immersion time have been found to affect the catalyst performance strongly, leading to a conclusion that the compounds are first adsorbed at the electrode surface and act as catalysts. Significant improvements in cell performance have been noted in terms of both exchange rate constants of up to 3 times and current densities of up to 150% at glassy carbon electrode.