• 제목/요약/키워드: SiC membrane

검색결과 149건 처리시간 0.022초

Hydrogen-Permselective TiO$_2$2/SiO$_2$2 Membranes Formed by Chemical Vapor Deposition

  • Nam, Suk-Woo;Ha, Heung-Yong;Yoon, Sung-Pil;Jonghee Han;Lim, Tae-Hoon;Oh, In-Hwan;Seong- Ahn Hong
    • Korean Membrane Journal
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    • 제3권1호
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    • pp.69-74
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    • 2001
  • Films of TiO$_2$/SiO$_2$ were deposited on the inner surface of the porous glass support tubes by decomposition of tetraisopropyl titanate (TIPT) and tetraethyl orthosilicate (TEOS) at atmospheric pressure. Dense and hydrogen -permselective membranes were formed at 400-600$\^{C}$. The permeation rates of H$_2$ through the membrane at 600$\^{C}$ were 0.2-0.4 ㎤(STP)/min-㎠ atm and H$_2$:N$_2$permeation ratios were above 1000. The permeation properties of the membranes were investigated at various deposition temperatures and TIPT/TEOS concentrations. Decomposition of TIPT alone at temperatures above 400$\^{C}$ produced porous crystalline TiO$_2$ films and they were not H7-selective. Decomposition of TEOS produced H$_2$-permeable SiO$_2$ films at 400-600$\^{C}$ but film deposition rate was very low. Addition of TIFT to the TEOS stream significantly accelerated the deposition rate and produced highly H$_2$-selective films. Increasing the TIPT/TEOS concentration ratio increased the deposition rate. The TiO$_2$/SiO$_2$ membranes formed at 600 $\^{C}$ have the permeation properties comparable to those of SiO$_2$ membranes produced from TEOS.

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3C-SiC 마이크로 히터의 제작과 그 특성 (Fabrication of 3C-SiC micro heaters and its characteristics)

  • 정귀상;정재민
    • 센서학회지
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    • 제18권4호
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    • pp.311-315
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    • 2009
  • This paper describes the characteristics of a poly 3C-SiC micro heater which was fabricated on AlN(0.1 $\mu$m)/3C-SiC(1.0 $\mu$m) suspended membranes by surface micro-machining technology. The 3C-SiC and AlN thin films which have wide energy band gap and very low lattice mismatch were used sensors for high temperature and voltage environments. The 3C-SiC thin film was used as micro heaters and temperature sensor materials simultaneously. The implemented 3CSiC RTD(resistance of temperature detector) and the power consumption of micro heaters were measured and calculated. The TCR(thermal coefficient of the resistance) of 3C-SiC RTD is about -5200 ppm/$^{\circ}C$ within a temperature range from 25 $^{\circ}C$ to 50 $^{\circ}C$ and -1040 ppm/$^{\circ}C$ at 500 $^{\circ}C$. The micro heater generates the heat about 500 $^{\circ}C$ at 10.3 mW. Moreover, durability of 3C-SiC micro heaters in high voltages is better than Pt micro heaters. A thermal distribution measured and simulated by IR thermovision and COMSOL is uniform on the membrane surface.

비스페닐프로판 단위를 갖는 연료전지전해질용 블록공중합체/나노실리카 복합막 제조 및 특성 (Preparation and Characterization of Block Copolymer Containing Bisphenyl Propane Unit and Nanosilica Composite Membrane for Fuel Cell Electrolyte Application)

  • 김애란
    • 한국수소및신에너지학회논문집
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    • 제28권2호
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    • pp.144-149
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    • 2017
  • A proton-conducting bisphenylpropaned sulfonated fluorinated blockcopolymer (BPSFBC) was synthesized. Five kinds of polymer electrolyted composite membranes were preparated by incorporating silica ($SiO_2$) with various weight ratio. And their characteristics were investigated by FT-IR (fourier transform infrared), $^1H-NMR$ ($^1H$ nuclear magnetic resonance), TGA (thermogravimetric analysis), water uptake, FE-SEM (field emission scanning electron microscopes), and ion conductivity properties. The water uptake and ion conductivity were increased until 9 wt% $SiO_2$, and then decreased. The maximum proton conductivity equal to $52mScm^{-1}$ was measured for the BPSFBC/$SiO_2$-9 composite membrane at $90^{\circ}C$ and 100% relative humidity. From the measured results, it is distinct that the manufactured composite membrane BPSFBC/$SiO_2$-9 can be considered as a polymer membrane suitable for a fuel cell electrolyte.

초고온용 다결정 3C-SiC 마이크로 압력센서의 제작 (Fabrication of polycrystalline 3C-SiC micro pressure sensors for hightemperature applications)

  • 정귀상
    • 센서학회지
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    • 제19권1호
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    • pp.31-35
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    • 2010
  • High temperature micro pressure sensors were fabricated by using polycrystalline 3C-SiC piezoresistors grown on oxidized SOI substrates by APCVD. These have been made by bulk micromachining under $1{\times}1mm^2$ diaphragm and Si membrane thickness of $20{\mu}m$. The pressure sensitivity of implemented pressure sensors was 0.1 mV/$V{\cdot}bar$. The nonlinearity and the hysteresis of sensors were ${\pm}0.44%{\cdot}FS$ and $0.61%{\cdot}FS$. In the temperature range of $25^{\circ}C{\sim}400^{\circ}C$ with 5 bar FS, TCS (temperature coefficient of sensitivity), TCR (temperature coefficient of resistance), and TCGF (temperature coefficient of gauge factor) of the sensor were -1867 ppm/$^{\circ}C$, -792 ppm/$^{\circ}C$, and -1042 ppm/$^{\circ}C$, respectively.

초고온용 다결정 3C-SiC 마이크로 압력센서의 특성 (Characteristics of polycrystalline 3C-SiC micro pressure sensors for high temperature applications)

  • 덩 샤오 티엔;정귀상
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2008년도 하계학술대회 논문집 Vol.9
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    • pp.387-388
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    • 2008
  • High temperature micro pressure sensors were fabricated by polycrystalline (poly) 3C-SiC piezoresistors formed by oxidized SOI substrates with APCVD. These have been designed by bulk micromachining below $1{\times}1mm^2$ diaphragm and Si membrane $20{\mu}m$ thick. The pressure sensitivity of fabricated pressure sensor was 0.1 mV/Vbar. The non-linearity of sensor was ${\pm}0.44%$ FS and the hysteresis was 0.61% FS.TCS of pressure sensor was -1867 ppm/$^{\circ}C$, its TCR was -792 ppm/$^{\circ}C$, and TCGF to 5 bar was -1042 ppm/$^{\circ}C$ from 25 to $400^{\circ}C$.

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스트레스균형이 이루어진 $Si_{3}N_{4}/SiO_{2}/Si_{3}N_{4}$ 유전체 멤브레인의 제작 (Fabrication of Stress-balanced $Si_{3}N_{4}/SiO_{2}/Si_{3}N_{4}$ Dielectric Membrane)

  • 김명규;박동수;김창원;김진섭;이정희;이종현;손병기
    • 센서학회지
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    • 제4권3호
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    • pp.51-59
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    • 1995
  • 실리콘기판 위에 스트레스균형이 이루어진 150 nm-$Si_{3}N_{4}$/300 nm-$SiO_{2}$/150 nm-$Si_{3}N_{4}$ 구조의 평탄한 유전체 멤브레인을 제작하였다. 이 멤브레인의 스트레스 특성평가를 위하여 stress-deflection, stress-temperature 및 스트레인 진단용 시험패턴의 특성을 측정분석하였고, 중간에 있는 $SiO_{2}$층을 PECVD, LPCVD 및 APCVD방법으로 각각 증착하여 $SiO_{2}$층의 증착방법에 따른 적층 유전체박막의 스트레스특성에 대해서도 논의하였다. 대부분의 경우 적층 유전체 멤브레인에 인장스트레스가 존재하였으나, $SiO_{2}$층의 증착방법과 거의 무관하게 $1,150^{\circ}C$의 후습식산화로 실리콘기판에 의해 멤브레인에 나타나는 인장스트레스의 균형을 얻을 수 있었다. 온도변화에 따른 멤브레인에서의 스트레스 변화특성으로 부터 후산화처리를 하지 않는 경우에는 중간의 $SiO_{2}$ 층으로 APCVD방법에 의해 증착된 LTO가 더 적합한 것으로 나타났다.

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다공성 제올라이트 멤브레인의 합성 및 알코올 /물 분리에의 응용 (Synthesis of Microporous Zeolitic Membranes and Application in Alcohol/water Separation)

  • 김건중;남세종
    • 멤브레인
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    • 제9권2호
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    • pp.97-106
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    • 1999
  • 조성이 각각 1.9 ${SiO}_2$-1.5 $Na_2O-Al_2O_3-40$ $H_2O$인 반응물과 $SiO_2-0.13 Na_2O-52$ $H_2O$-0.12 TPAOH 인 반응물로부터 다공성 지지판에 성장된 A 형 및 ASM-5형 제올라이트 결정박막을 합성하여 X 선회절분석기와 주사전자현미경으로 마그이 특성을 검토하였다. 알루미나 지지상에 붙어 성장한 ZSM-5gtud 제올라이트 결정은 치밀하게 서로 붙은 상태였다. A형 제올라이트는 지지체상에 치밀한 결정막으로 성장시키기가 어려웠으며, 반응시간을 연장시키면 물의 분리가 어려운 P형의 제올라이트결정막으로 전환되었다. 반응물을 조제할 때, 물은 첨가하지 않은 채로 혼합하고 디스크형으로 가압성형하여 100$^{\cirt}C$에서; 결정화시키면 단시간에 lcalf하게 성장된 A형 제올라이트 결정막을 합성할 수 있었다. 제조한 다공성 무기막들이 물과 알코올의 혼합액으로부터 물을 투과증발시키는 특성을 각각 검토하였다. 막으로 결정화시킨 A형 제올라이트는 미세세공의 분자체기능을 통하여 물과 알코올의 혼합수용랙에서 물만을 선택적으로 투과시키는 것을 알 수 있었다.

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폴리카보실란으로부터 제조된 탄화규소 중공사의 미세구조제어 (Nano-Structure Control of SiC Hollow Fiber Prepared from Polycarbosilane)

  • 신동근;공은배;조광연;권우택;김영희;김수룡;홍준성;류도형
    • 한국세라믹학회지
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    • 제50권4호
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    • pp.301-307
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    • 2013
  • SiC hollow fiber was fabricated by curing, dissolution and sintering of Al-PCS fiber, which was melt spun the polyaluminocarbosilane. Al-PCS fiber was thermally oxidized and dissolved in toluene to remove the unoxidized area, the core of the cured fiber. The wall thickness ($t_{wall}$) of Al-PCS fiber was monotonically increased with an increasing oxidation curing time. The Al-PCS hollow fiber was heat-treated at the temperature between 1200 and $2000^{\circ}C$ to make a SiC hollow fibers having porous structure on the fiber wall. The pore size of the fiber wall was increased with the sintering temperature due to the decomposition of the amorphous $SiC_xO_y$ matrix and the growth of ${\beta}$-SiC in the matrix. At $1400^{\circ}C$, a nano porous wall with a high specific surface area was obtained. However, nano pores grew with the grain growth after the thermal decomposition of the amorphous matrix. This type of SiC hollow fibers are expected to be used as a substrate for a gas separation membrane.

MoSiA를 이용한 수전해용 공유가교 SPEEK/Cs-MoSiA/Ceria복합막의 제조 및 성능 연구 (Synthesis and Characterization of Covalently Cross-Linked SPEEK/Cs-substituted MoSiA/Ceria Composite Membranes with MoSiA for Water Electrolysis)

  • 서현;송유리;오연선;문상봉;정장훈
    • 한국수소및신에너지학회논문집
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    • 제26권6호
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    • pp.524-531
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    • 2015
  • To improve the electrochemical and mechanical characteristics, engineering plastic of the sulfonated polyether ether ketone (SPEEK) as polymer matrix was prepared in the sulfonation reaction of polyether ether ketone (PEEK). The SPEEK organic-inorganic blended composite membranes were prepared by sol-gel casting method. It was loaded with the highly dispersed ceria and cesium-substituted molybdosilicic acid (Cs-MoSiA) and 1,4-diiodobutane which was cross-linking agent contents of $10{\mu}L$. Cs-MoSiA was added to increase proton conductivity. Ceria ($CeO_2$) was used as a free radical scavenger which degrade the membrane in polymer electrolyte membrane water elctrolysis (PEMWE). In conclusion, CL-SPEEK/Cs-MoSiA/Ceria 1% composite membrane showed high proton conductivity 0.2104 S/cm at $25^{\circ}C$ which was better than Nafion 117 membrane.

수소분리용 Pd-Cu 합금 분리막의 Cu Reflow 영향 (The Effect of Cu Reflow on the Pd-Cu Alloy Membrane Formation for Hydrogen Separation)

  • 문진욱;김동원
    • 한국표면공학회지
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    • 제39권6호
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    • pp.255-262
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    • 2006
  • Pd-Cu alloy membrane for hydrogen separation was fabricated by sputtering and Cu reflow process. At first, the Pd and Cu was continuously deposited by sputtering method on oxidized Si support, the Cu reflow process was followed. Microstructure of the surface and permeability of the membrane was investigated depending on various reflow temperature, time, Pd/cu composition and supports. With respect to our result, Pd-Cu thin film (90 wt.% Pd/10 wt.% Cu) deposited by sputtering process with thickness of $2{\mu}m$ was heat-treated for Cu reflow The voids of the membrane surface were completely filled and the dense crystal surface was formed by Cu reflow behavior at $700^{\circ}C$ for 1 hour. Cu reflow process, which is adopted for our work, could be applied to fabrication of dense Pd-alloy membrane for hydrogen separation regardless of supports. Ceramic or metal support could be easily used for the membrane fabricated by reflow process. The Cu reflow process must result in void-free surface and dense crystalline of Pd-alloy membrane, which is responsible for improved selectivity oi the membrane.