• 제목/요약/키워드: Pt/C

검색결과 1,861건 처리시간 0.027초

Pt-Aluminide로 코팅된 초내열합금의 열처리에 따른 미세조직변화 (Effect of Heat Treatment on the Microstructural Evolution of Pt-aluminide Coated Ni-based Superalloy)

  • 주동원;박상현;정연길;이구현;김창석
    • 열처리공학회지
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    • 제19권2호
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    • pp.103-108
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    • 2006
  • Microstructural evolution of Pt-aluminide coated Ni-based superalloy has been investigated with ductilization heat treatment. The Pt coat was prepared on the superalloy and then aluminide coating was conducted using a pack cementation process. Samples were heat-treated at $1050^{\circ}C$ for 2 hrs and the microstructure and element analysis were preformed. A various precipitated compounds were observed within the coating layer and the diffusion region in the Pt-aluminide coating and heat treatment, indicating that the bi-phase compounds of $PtAl_2$ and NiAl were performed during the Pt-aluminide coating, whereas $M_{23}C_6$, MC, $Ni_3Al$ and ${\sigma}$ phases were precipitated in the inter-diffusion region. The bi-phase compounds of $PtAl_2$ and NiAl were transformed into the single phase compound of $PtAl_2$ with the heat treatment, increasing the amount of carbide and ${\sigma}$ phase.

Pt-MIS 커패시터 소자의 수소가스 검지특성 연구 (A Study on Hydrogen Detection Characteristics of the Pt-MIS Capacitor Device)

  • 성영권;이승환;고중혁;이동희
    • 대한전기학회논문지:전기물성ㆍ응용부문C
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    • 제48권2호
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    • pp.69-75
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    • 1999
  • The characteristics of $H_2$ gas detection have been investigated using the Pt-MIS capacitor composed of the LPCVD nitride on the oxide. The flat band voltage shift is measured as 0.1 V in 1,000 ppm $H_2$ gas ambient and to be independent of Pt catalyst thickness. It is found that the flatband voltage shift is proportional to the hydrogen concentrations. The response and recovery time of Pt-MIS capacitor are 5 mins and 25 mins respectively. The samples of 30nm thick Pt revealed much higher sensitivity than that of 150nm samples. The samples of 150nm Pt showed that the flatband voltage shift of the device is due to the formation of the dipole layer of the adsorbed hydrogen atoms at the Pt-insulator interface.

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Preparation of Platinum catalysts for PEM Fuel cells

  • Sasikumar G.;Ryu H.
    • 한국전기화학회:학술대회논문집
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    • 한국전기화학회 2003년도 연료전지심포지움 2003논문집
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    • pp.189-192
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    • 2003
  • In this work, we have prepared platinum catalyst by various methods, investigated fuel cell performance and compared performance with commercially available $20\%$ Pt supported on carbon (Pt/C) catalyst. We have found that Pt/C prepared by reduction of chloroplatinic acid in mixed solvent (water+ethylene glycol) gives better performance compared to that produced by reduction of aqueous chloroplatinic acid, which can be attributed to smaller catalyst particle size and lower agglomeration in the mixed solvent. We have also prepared a novel platinum electrocatalyst by depositing platinum on Nafion coated carbon powder and it shows great promise. The performance of electrode prepared using $20\%Pt$ onn Nafion coated carbon mixed with Pt/C was found to be higher than the performance of electrodes using commercially available $20\%$ Pt/C, up to a current density of about $1100mA/cm^2$. The cell voltages obtained were respectively 621 and 603mV, at a current density of: $1000mA/cm^2$, in a single cell using $0.25mgPt/cm^2$ and Nafion 10035 membrane at $80^{\circ}C$ using hydrogen/oxygen reactants at 1 atm pressure.

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$Pt/MoO_{3}$ 구조를 이용한 가스 센서의 개발 (Development of gas sensor using $Pt/MoO_{3}$ system)

  • 김창교;김진걸;유광수;최용일;한득영
    • 한국결정성장학회지
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    • 제6권2호
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    • pp.213-219
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    • 1996
  • $300^{\circ}C$ 이상의 고온에서 동작하는 전통적인 $SnO_{2}$ 또는 ZnO와 같은 전통적인 세라믹 가스 센서보다 훨씬 낮은 온도에서 동작이 가능한 $Pt/MoO_{3}$ 가스 센서를 pellet 형으로 제작하였다. $Pt/MoO_{3}$ 가스 센서의 하고 온도(calcination temperature)에 따른 표면구조의 변화와 결정구조의 변화가 투과전자현미경(transmission electron microscopy)과 X-선 회절시험에 의하여 조사되었다. 투과전자현미경 사진으로부터 하소 온도가 증가할수록 시편에서 $PtCl_{x}$에서 Cl의 양이 줄어드는 것과 Pt위에 $MoO_{3}$의 얇은 막(overlayer)이 형성되어 있다는 것을 보여준다. 가스 흡착 시험 결과 표면구조의 변화에 따라서 시편의 수소 저장 능력이 변화함을 보여주었다. $50^{\circ}C$$150^{\circ}C$에서 수소가스 감지도를 측정한 결과 매우 우수한 결과를 보여 주었다.

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Pt/TiO2 촉매의 물리화학적 특성이 NH3-SCO 반응활성에 미치는 영향 (The Selective Catalytic Oxidation of Ammonia: Effect of Physicochemical Properties on Pt/TiO2)

  • 신중훈;김동호;홍성창
    • 공업화학
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    • 제28권3호
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    • pp.279-285
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    • 2017
  • 본 연구에서는 $200{\sim}350^{\circ}C$의 범위에서 $NH_3$를 제어하기 위한 선택적 촉매 산화법(SCO)의 연구를 수행하였다. 제조된 촉매들의 물리화학적 특성을 확인하기 위하여 XRD, XPS 분석을 수행하였다. 열처리 조건에 따른 촉매의 반응활성은 수소로 환원시킨 촉매가 소성한 촉매보다 우수한 활성을 나타냈으며, XPS 분석을 통하여 환원촉매의 산화가 비율은 주로 $Pt^{2+}$$Pt^0$가 존재하는 것을 확인할 수 있었다. 또한 환원온도에 따른 $Pt/TiO_2$ 촉매의 반응활성을 비교해본 결과 $700^{\circ}C$에서 환원한 촉매가 가장 우수한 $NH_3$ 전환율을 나타냈으나, $N_2$로의 전환율은 $600^{\circ}C$에서 환원한 촉매가 가장 우수한 것을 확인하였다.

Study of CO Oxidation on Well-Characterized Pt-Ru/C Electrocatalysts Having Different Composition

  • Min, Myoung-Ki;Kim, Joo-Hoon;Kim, Ha-Suck
    • Bulletin of the Korean Chemical Society
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    • 제31권1호
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    • pp.151-156
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    • 2010
  • In this paper, we characterized bimetallic Pt-Ru/C alloy catalysts having four different compositions and compared the catalytic activities of the prepared alloys for CO oxidation. ICP-AES, EDS, XRD, TEM, and XAS were used to investigate the composition, degree of alloying, particle size, and electronic structure of the prepared Pt-Ru/C catalysts. Those results indicated the synthesis of the alloy catalysts with intended composition and uniform size. The electrochemical study of the characterized alloys showed higher catalytic activity for CO oxidation than that of the commercial Pt/C (E-TEK, Inc., 20 wt %) catalyst. Especially, it was shown that the alloy catalyst with Ru composition of 50 atomic % gave the highest catalytic activity for CO oxidation.

Panax ginseng C.A. Meyer의 PD와 PT는 아드레날린에 의해 유인된 사람 혈소판의 응집반응에서 Thromboxane $A_2$의 생성을 저해한다 (Panaxadiol and Panaxatriol from Panax ginseng C.A. Meyer Inhibit the Synthesis of Thromboxane $A_2$ in Adrenaline-Stimulated Human Platelet Aggregations)

  • Park, Kyeong-Mee;Rhee, Man-Whee;Park, Hwa-Jin
    • Journal of Ginseng Research
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    • 제18권1호
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    • pp.44-48
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    • 1994
  • In adrenaline-stimulated human platelets, panaxadiol (PD) and panaxatriol (PT) from Panax ginseng C.A. Meyer did not inhibit the $Ca^{2+}$-innux, but inhibited the formation of thromboxane $A_2$ and the platelet aggregations. It seems that PD and PT block a pathyway interconvefing arachidonic acids (20:4) to thromboxane $A_2$ (TX $A_2$), because the amount of $Ca^{2+}$ which phospholipase C or phospholipase $A_2$ requires to liberate 20 : 4 from membrane phospholipids was increased by PD and PT. These results mean that PH and PT have an antiplatelet effect by Inhibiting the formation of TX $A_2$.

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탄소계 박막의 성장과 특성에 대한 나노 Buffer Layer의 영향 (Effect of Nano Buffer Layer on Property and Growth of Carbon Thin Film)

  • 류정탁
    • 한국전기전자재료학회논문지
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    • 제16권1호
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    • pp.53-59
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    • 2003
  • Using Platinum-silicide (PtSi) formed between silicon substrate and carbon film, we have improved the field emission of electrons from carbon films. Pt films were deposited on n-Si(100) substrates at room temperature by DC sputter technique. After deposition, these PtSi thin films were annealed at 400 ~ $600^{\circ}C$ in a vacuum chamber, and the carbon films were deposited on those Pt/Si substrates by laser ablation at room temperature. The field emission property of C/Pt/Si system is found to be better than that of C/Si system and it is showed that property was improved with increasing annealing temperature. The reasons why the field emission from carbon film was improved can be considered as follows, (1)the resistance of carbon films was decreased due to graphitization, (2)electric field concentration effectively occurred because the surface morphology of carbon film deposited on Pt/si substrates with rough surface, (3)it is showed that annealing induced reaction between Pt film and Si substrate, as a consequence that the interfacial resistance between Pt film and Si substrate was decreased.

Prepartion and Characterization of the Pt doped $TiO_2$ Membranes

  • Bae, Dong-Sik;Han, Kyong-Sop;Choi, Sang-Hael
    • The Korean Journal of Ceramics
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    • 제3권1호
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    • pp.52-56
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    • 1997
  • The Pt doped $TiO_2$ composite membranes were prepared by the sol-gel process. The Pt doped titania sol was peptized with hydrochloric acid in the pH range of 1.23 to 1.32 at 5$0^{\circ}C$. The average particle size of the Pt doped titania sol was shown to be below 15nm and well dispersed in the solution. XPS show the Pt elements continuous and homogeneous dispersed in the $TiO_2$ membrane. The mean particle size of the Pt doped $TiO_2$ composite membrane has smaller than that of the undoped $TiO_2$ composite membrane. The average pore size of the Pt doped $TiO_2$ composite membrane was increased from 58 to 193 $\AA$ with firing temperature changed from 550 to 85$0^{\circ}C$. It was observed that the Pt doped $TiO_2$ composite membranes showed crack-free and homogeneous microstructue as well as narrow particle size distribution up to above 75$0^{\circ}C$.

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Phosphate-decorated Pt Nanoparticles as Methanol-tolerant Oxygen Reduction Electrocatalyst for Direct Methanol Fuel Cells

  • Choi, Jung-goo;Ham, Kahyun;Bong, Sungyool;Lee, Jaeyoung
    • Journal of Electrochemical Science and Technology
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    • 제13권3호
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    • pp.354-361
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    • 2022
  • In a direct methanol fuel cell system (DMFC), one of the drawbacks is methanol crossover. Methanol from the anode passes through the membrane and enters the cathode, causing mixed potential in the cell. Only Pt-based catalysts are capable of operating as cathode for oxygen reduction reaction (ORR) in a harsh acidic condition of DMFC. However, it causes mixed potential due to high activity toward methanol oxidation reaction of Pt. To overcome this situation, developing Pt-based catalyst that has methanol tolerance is significant, by controlling reactant adsorption or reaction kinetics. Pt/C decorated with phosphate ion was prepared by modified polyol method as cathode catalyst in DMFC. Phosphate ions, bonded to the carbon of Pt/C, surround free Pt surface and block only methanol adsorption on Pt, not oxygen. It leads to the suppression of methanol oxidation in an oxygen atmosphere, resulting in high DMFC performance compared to pristine Pt/C.