• 제목/요약/키워드: FIB-SEM

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Hydrogen and Ethanol Gas Sensing Properties of Mesoporous P-Type CuO

  • Choi, Yun-Hyuk;Han, Hyun-Soo;Shin, Sun;Shin, Seong-Sik;Hong, Kug-Sun
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제43회 하계 정기 학술대회 초록집
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    • pp.222-222
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    • 2012
  • Metal oxide gas sensors based on semiconductor type have attracted a great deal of attention due to their low cost, flexible production and simple usability. However, most works have been focused on n-type oxides, while the characteristics of p-type oxide gas sensors have been barely studied. An investigation on p-type oxides is very important in that the use of them makes possible the novel sensors such as p-n diode and tandem devices. Monoclinic cupric oxide (CuO) is p-type semiconductor with narrow band gap (~1.2 eV). This is composed of abundant, nontoxic elements on earth, and thus low-cost, environment-friendly devices can be realized. However, gas sensing properties of neat CuO were rarely explored and the mechanism still remains unclear. In this work, the neat CuO layers with highly ordered mesoporous structures were prepared by a template-free, one-pot solution-based method using novel ink solutions, formulated with copper formate tetrahydrate, hexylamine and ethyl cellulose. The shear viscosity of the formulated solutions was 5.79 Pa s at a shear rate of 1 s-1. The solutions were coated on SiO2/Si substrates by spin-coating (ink) and calcined for 1 h at the temperature of $200{\sim}600^{\circ}C$ in air. The surface and cross-sectional morphologies of the formed CuO layers were observed by a focused ion beam scanning electron microscopy (FIB-SEM) and porosity was determined by image analysis using simple computer-programming. XRD analysis showed phase evolutions of the layers, depending on the calcination temperature, and thermal decompositions of the neat precursor and the formulated ink were investigated by TGA and DSC. As a result, the formation of the porous structures was attributed to the vaporization of ethyl cellulose contained in the solutions. Mesoporous CuO, formed with the ink solution, consisted of grains and pores with nano-meter size. All of them were strongly dependent on calcination temperature. Sensing properties toward H2 and C2H5OH gases were examined as a function of operating temperature. High and fast responses toward H2 and C2H5OH gases were discussed in terms of crystallinity, nonstoichiometry and morphological factors such as porosity, grain size and surface-to-volume ratio. To our knowledge, the responses toward H2 and C2H5OH gases of these CuO gas sensors are comparable to previously reported values.

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코발트실리사이드를 이용한 염료감응형 태양전지 상대전극의 신뢰성 평가 (Reliability of a Cobalt Silicide on Counter Electrodes for Dye Sensitized Solar Cells)

  • 김광배;박태열;송오성
    • 한국산학기술학회논문지
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    • 제18권4호
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    • pp.1-7
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    • 2017
  • 염료감응형 태양전지 촉매층으로 CoSi의 신뢰성을 확인하기 위해 전자빔증착기를 이용하여 100 nm-Co/300 nm-Si/quartz의 적층구조를 형성하고, $700^{\circ}C$-60분의 진공열처리하여 약 350 nm-CoSi를 형성하였다. 이때 잔류 Co를 제거하기 위해 $80^{\circ}C$-30%의 황산처리를 진행하였다. 또한 비교를 위해 100 nm-Pt/glass 상대전극을 준비하였다. CoSi 상대전극이 채용된 DSSC 소자의 신뢰성을 확인하기 위해 $80^{\circ}C$ 온도조건에서 0, 168, 336, 504, 672, 840시간동안 유지하였다. 이들을 채용한 DSSC 소자의 광전기적 특성을 분석하기 위해 solar simulator와 potentiostat을 이용하였다. CoSi 상대전극의 촉매활성도, 미세구조, 그리고 조성 분석을 확인하기 위해 CV, FE-SEM, FIB-SEM, EDS를 이용하여 분석하였다. 시간에 따른 에너지변환효율 결과, Pt와 CoSi 상대전극 모두 에너지변환효율이 504시간까지는 유지되다가 672시간 경과 후 처음의 50%로 감소하는 특성을 보였다. 촉매활성도 분석 결과, 시간이 지남에 따라 Pt와 CoSi 상대전극 모두 촉매활성도가 감소하여 각각 64%, 57%의 촉매활성도를 보였다. 미세구조 분석 결과, CoSi층은 전해질에 대한 안정성은 우수하였으나, 하부 쿼츠 기판과 CoSi층의 접촉면에 스트레스가 집중되어 국부적으로 크렉이 형성되며, 궁극적으로 ${\mu}m$급의 박리현상을 확인하였다. 따라서 CoSi 상대전극은 실리사이드화 되는 과정에서 잔류응력 때문에 열화가 일어나므로 신뢰성의 확보를 위해서는 이러한 잔류응력의 대책이 필요하였다.