• Title/Summary/Keyword: 백금-탄소

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금 나노입자를 이용한 단일벽 탄소나노튜브의 합성

  • Lee, Seung-Hwan;Jeong, Gu-Hwan
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.08a
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    • pp.355-355
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    • 2011
  • 이론적으로 단일벽 탄소나노튜브(SWNT)는 무산란 전도가 가능하여 실리콘을 대체할 차세대 나노소자의 기본소재로서 많은 각광을 받아왔다. 이러한 SWNT의 전기전자적 특성을 좌우하는 주요인자로는 직경과 비틀림도(chirality)가 있으며, 이를 제어하기 위한 많은 방법들이 제시되어왔다. 특히, SWNT 합성 시 필요한 촉매 나노입자의 크기와 튜브직경과의 연관성이 제기된 후부터, 합성단계에서 촉매 나노입자의 형태(또는 크기)를 제어함으로써 SWNT의 직경을 제어하고자 하는 직접적인 방법들도 주요방법의 한 축으로 이어지고 있다. 한편, SWNT의 합성촉매로는 철, 코발트, 니켈 등의 전이금속이 주로 사용되어 왔으나, 최근에는 금, 은, 루테늄, 팔라듐, 백금 등의 귀금속에서부터 다양한 금속산화물 나노입자에 이르기까지 그 범위가 확장되었다. 본 연구에서는, 촉매 나노입자의 크기제어를 통하여 SWNT의 직경을 제어할 목적으로, 전이금속에 비해 상대적으로 융점이 낮아 비교적 낮은 온도의 열처리를 통해서도 입자의 크기를 제어할 수 있는 금 나노입자를 선정하여 SWNT의 합성거동을 살펴보았다. 합성은 메탄을 원료가스로 하는 CVD방법을 이용하였고, 합성되는 SWNT의 다발화(bundling) 등을 방지하기 위하여 수평배향 성장을 도모하였으며, 이를 위하여 퀄츠 웨이퍼를 사용하였다. 우선, 콜로이드상인 금 나노입자의 스핀코팅 조건을 최적화하여 퀄츠 위에 단분산(monodispersion) 된 금 나노입자를 얻었으며, 열처리 온도 및 시간의 제어를 통하여, 1~5 nm 범위 내에서 특정 직경을 갖는 금 나노입자를 얻는 것이 가능하게 되었다. 합성 후 금 나노입자의 크기와 합성된 SWNT 직경과의 관계를 면밀히 조사한 결과, 튜브보다 나노입자의 크기가 약간 큰 것을 확인할 수 있었으며, 금 나노입자의 크기에 따라 SWNT의 합성효율이 크게 좌우되는 것을 확인하였다.

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A Comprehensive Review of PEMFC Durability Test Protocol of Pt Catalyst and MEA (수소연료전지 백금촉매 및 MEA 장기내구성 평가 방법의 비교)

  • Ham, Kahyun;Chung, Sunki;Lee, Jaeyoung
    • Applied Chemistry for Engineering
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    • v.30 no.6
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    • pp.659-666
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    • 2019
  • Proton exchange membrane fuel cells (PEMFCs) generate electricity by electrochemical reactions of hydrogen and oxygen. PEMFCs are expected to alternate electric power generator using fossil fuels with various advantages of high power density, low operating temperature, and environmental-friendly products. PEMFCs have widely been used in a number of applications such as fuel cell vehicles (FCVs) and stationary fuel cell systems. However, there are remaining technical issues, particularly the long-term durability of each part of fuel cells. Degradation of a carbon supported-platinum catalyst in the anode and cathode follows various mechanistic origins in different fuel cell operating conditions, and thus accelerated stress test (AST) is suggested to evaluate the durability of electrocatalyst. In this article, comparable protocols of the AST durability test are intensively explained.

Time-Dependent Modeling of Performance Degradation for PEMFC Single Cell System to Evaluate the Cell Performance and Durability: Effects of CO Poisoning (고분자전해질 연료전지의 성능과 안정성 시험을 위한 단위전지의 시간 경과에 따른 모델링: 일산화탄소 피독현상에 의한 효과)

  • Kim, Jong-Sik;Kim, Pil;Joo, Ji-Bong;Kim, Woo-Young;Yi, Jong-Heop
    • Clean Technology
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    • v.14 no.1
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    • pp.61-68
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    • 2008
  • There have been great attentions on polymer electrolyte membrane fuel cell (PEMFC) due to their advantageous characteristics such as zero emission of hazardous pollutant and high energy density. In this work, we evaluated degradation phenomena and stability of single cell performance via one dimensional single cell modeling. Here, CO poisoning on anode on anode was considered for cell performance degradation. Modeling results showed that the performance and stability were highly degraded with CO concentration in fuel gas. In addition, cell performance was reduced by slow oxygen reduction on cathode in long term operation. In order to overcome, it is required to increase ratio o#hydrogen in the fuel gas of anode and high Pt loading contained in the cathodic catalyst layer.

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Performance and Operational Characteristics of Natural Gas Fuel Processor for 1kW Class PEMFCs (1kW급 고분자 연료전지용 통합형 천연가스 개질 수소 제조 시스템의 성능 및 운전 특성)

  • Seo, Yu-Taek;Seo, Dong-Joo;Seo, Young-Seog;Roh, Hyun-Seog;Jeong, Jin-Hyeok;Yoon, Wang-Lai
    • 한국신재생에너지학회:학술대회논문집
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    • 2006.06a
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    • pp.17-20
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    • 2006
  • 한국에너지기술연구원에서는 가정용 고분자연료전지 열병합 발전시스템을 위한 통합형 천연가스 연료처리 시스템을 개발해 왔다. 가정용 시스템으로서 필수적인 소형화와 고효율을 현실화하기 위해, 연료처리 시스템의 각 단위 공정 즉 수증기 개질, 수성가스 전이, 선택적 산화 공정 등을 이중 동 심관형 반응기에 통합하여 상호 열교환이 용이하도록 반응기를 설계하였다. 현재 시험 운전 중인 Prototype-I 연료 처리 시스템은 1kW급 고분자 연료전지 열병합 발전 시스템에 개질 가스를 공급하기 위해 설계되었으며, 기초 성능은 정격 부하 운전시 열효율 78% (HHV 기준), 메탄 전환율 91%이다. 개질 가스 내 일산화탄소 농도는 고분자 연료전지 전극의 피독을 피하기 위해 10ppm 이하로 유지되어야 하며, Prototype-I 연료 처리 시스템은 백금과 루테늄 촉매를 적용한 선택적 산화 반응기를 통해 개질 가스 내 일산화탄소 농도를 10ppm 이하로 제거하였다. 일반 가정에서는 고분자 연료전지 시스템의 부하 변동이 예상되기 때문에 연료 처리 시스템의 부하 변동 운전 특성도 살펴보았다 정격 부하에서 80%, 60%, 40%로 부하를 변동하며 운전하였고, 각 부하에서 안정한 메탄 전환율과 10ppm이하의 일산화탄소 농도를 보였다. 80%까지는 열효율이 77%로 큰 변화를 보이지 않았으며, 60%에서는 76%, 40%에서는 72%로 열효율이 감소하는 현상을 보였다 연료 처리 시스템의 일일 시동-정지 운전시 내구성을 테스트 중이다. 현재까지 50여회의 일일-시동 정지를 시도하였다 시동 후 약 세 시간가량의 정력 부하 운전을 실시한 후 부하 변동을 실시하였고, 총 운전 시간 8시간 정도 운전한 후 시스템을 정지하였다 메탄 전환율과 일산화 탄소 농도, 열효율을 모니터링 하고 있으며, 현재까지 초기 성능을 그대로 유지하고 있다. 앞으로 일일시동-정지 운전 시험을 지속하면서 초기 시동 특성 및 부하 변동에 따른 응답 특성 개선, 그리고 연료전지와의 연계 운전을 실시할 예정이다

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Prevention of Power Overshoot and Reduction of Cathodic Overpotential by Increasing Cathode Flow Rate in Microbial Fuel Cells used Stainless Steel Scrubber Electrode (스테인리스강 수세미 전극을 사용한 미생물연료전지의 전력 오버슈트 예방과 환원조 유속 증가에 의한 환원전극 과전압 감소)

  • Kim, Taeyoung;Kang, Sukwon;Chang, In Seop;Kim, Hyun Woo;Sung, Je Hoon;Paek, Yee;Kim, Young Hwa;Jang, Jae Kyung
    • Journal of Korean Society of Environmental Engineers
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    • v.39 no.10
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    • pp.591-598
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    • 2017
  • Power overshoot phenomenon was observed in microbial fuel cells (MFCs) used non-catalyzed graphite felt as cathode. Voltage loss in MFCs was mainly caused by cathode potential loss. Cheap stainless steel scrubber, which has high conductivity, and Pt/C coated graphite felt as cathode were used for overcoming power overshoot and reducing the cathode potential loss in MFCs. The MFCs used stainless steel scrubber showed no power overshoot even slow catholyte flow rate and produced 29% enhanced maximum current density ($23.9A/m^3$) than MFCs used non-catalyzed graphite felt while the power overshoot phenomenon was existed in Pt/C coated MFCs. Increasing catholyte flow rate resulted in disappearing power overshoot of MFCs used non-catalyzed graphite felt. In addition, maximum power density and current density of both MFCs used non-catalyzed graphite felt and stainless steel scrubber increased by 2-3.5 times. Cathode potential losses in all region of activation loss, ohmic loss, and mass transport loss were reduced according to increase of catholyte flow rate. Therefore, stainless steel scrubber has advantages that are economical materials as electrode and prevents power overshoot, leading to enhance electricity generation. In addition, increasing catholyte flux is one of great solution when power overshoot caused by cathodic overpotential is observed in MFCs.

Electrochemical Oxidation of Silver (I) Salt (Ag(I) 염의 전해산화)

  • Duk Mook Kim
    • Journal of the Korean Chemical Society
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    • v.29 no.2
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    • pp.158-163
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    • 1985
  • The anodic oxidations of the Silver(I) / Silver(II) / Silver(III) system have been studied in aq. 2M $AgNO_3$ solution with Platinum and Carbon electrodes. It has been found that $Ag_7O_8NO_3$ can be produced at relatively higher current density. Deposited black Oxy-salt were analyzed with several methods such as oxidizing power, X-ray powder diffraction patterns, thermal analysis, and reduction curves. It decomposed to AgO upon being suspended in boiling water. AgO compound obtained from $Ag_7O_8NO_3$ were purer and denser than Alfa-product AgO.

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Improvement of Catalyst Supporting Characteristic on MWCNTs with Different Thermal Treatment for PEMFC (탄소나노튜브의 열처리에 따른 고분자전해질연료전지용 촉매의 표면처리 및 담지특성 향상)

  • Kwon, Min-Kii;Jung, Ju-Hae;Kim, Jun-Bom
    • Journal of the Korean Electrochemical Society
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    • v.14 no.4
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    • pp.245-252
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    • 2011
  • In this study, carbon nanotubes were used as supporter to get high dispersion and high loading of Pt for PEMFC. Thermal oxidation method was applied to carbon nanotubes surface treatment. FT-IR and XPS were used to measure the effect of temperature on functional group. The increased concentration of functional groups was confirmed by XPS analysis, and increased Pt loading and dispersion was also observed by TGA and TEM analysis with increased temperature. Thermal behavior of oxidation is closely related to the manufacture of highly dispersed Pt/MWCNTs. Pt/MWCNTs treatment temperature at $90^{\circ}C$, showed high dispersion and high loading of Pt, and also showed good cell performance.

Disposable Strip-type Sensors for Detection of Free Chlorine (유리염소 측정을 위한 일회용 스트립 센서)

  • Kim, Seung Ki;Kang, Tae Young;Cha, Geun Sig;Nam, Hakhyun;Shin, Jae Ho
    • Journal of the Korean Electrochemical Society
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    • v.15 no.4
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    • pp.242-248
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    • 2012
  • The measurement of residual chlorine as a disinfectant is very important to ensure the safety against the pathogenic microbes and to suppress injection. The portable free chlorine sensor was fabricated with a disposable strip format by a screen printing method. The strip sensors prepared with a carbon-Ag/AgCl(cathode-anode) combination exhibited less interfering responses towards combined chlorine species(especially $NHCl_2$) and oxygen than the sensors prepared with other metals(i.e., gold and platinum). Free chlorine was determined chronoamperometrically with carbon-based electrodes at an applied potential of -0.3 V(vs. Ag/AgCl). A channel was built on the strip-type electrode for easy sampling, and the resulting strip sensors were employed to determine the concentrations of residual free chlorine.

Preparation of Pt/porous Gold Electrode for CO Oxidation (CO 가스 산화를 위한 백금/다공성 골드 전극의 개발)

  • Shin, So-Hyang;Kim, He-Ro;Oh, Cheon-Seok;Ko, Jae-Wook;Kim, Young-Hun
    • Journal of the Korean Institute of Gas
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    • v.15 no.4
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    • pp.27-32
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    • 2011
  • Management of gas safety is becoming important with increasing use of gas facilities. U-safety system is being promoted as part of national management of gas, and thus real-time and in-situ gas sensor should be developed. Detection method for When the gas sensor is installed in gas conduit, explosion may be likely, because hydrocarbon gases is usually used the difference of thermal resistance between reference and working electrode. Therefore, it is required to detect the hydrocarbons, such as $CH_4$ and CO, at room temperature via electrochemically catalytic reaction. In this study, Pt nanoparticle was doped on the porous gold powder by electrolytic plating method, and then it was used as catalytic electrode for CO oxidation. For Pt/PAu electrode, approximately 21% of CO conversion was obtained. It is noted that Pt/PAu electrode could be used to react the oxidation of hydrocarbon gases at room temperature via applying of external voltage.

Effect of Acid Treatment of Graphitized Carbon on Carbon Corrosion in Polymer Electrolyte Membrane Fuel Cells (결정성 탄소의 산처리가 고분자연료전지의 성능과 내구성에 미치는 영향 평가)

  • Oh, Hyung-Suk;Han, Hak-Soo;Kim, Han-Sung
    • Journal of the Korean Electrochemical Society
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    • v.12 no.2
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    • pp.181-188
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    • 2009
  • Pt catalyst was adsorbed on Carbon nanofiber (CNF) by modified polyol method after acid treatment of the carbon support with $HNO_3$ and $H_{2}SO_{4}$. As the time for acid treatment increases, more oxygen functional groups on carbon surface were produced which improve the loading amount and dispersion of Pt catalyst on carbon supports. In order to inspect the effect of CNF acid treatment time on electrochemical corrosion, constant potential of 1.4 V was applied to a single cell for 30 min and the amount of $CO_2$ emitted was monitored with on-line mass spectrometry. According to the results of our experiment, more $CO_2$ was produced with Pt/ oxidized-CNF catalyst in compared to that with unoxidized-CNF. Increasing acid treatment time also induces the more $CO_2$ emission. Besides, performance degradation after corrosion test expanded with severer carbon corrosion. From the observed results, it can be concluded that the acid treatment of CNF is beneficial to catalyst loading, but it also is a significant factor declining the fuel cell durability by accelerating electrochemical oxidation of carbon support.