• Title/Summary/Keyword: 켈빈 탐침력 현미경

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Optimization of CdS buffer layers for $Cu_2ZnSnSe_4$ thin-film applications ($Cu_2ZnSnSe_4$ 태양전지의 적용을 위한 최적화 된 CdS 버퍼층 연구)

  • Kim, Gee-Yeong;Jeong, Ah-Reum;Jo, William
    • 한국태양에너지학회:학술대회논문집
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    • 2012.03a
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    • pp.400-403
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    • 2012
  • $Cu_2ZnSnSe_4$(CZTSe) is emerged as a promising material for thin-film solar cells because of non-toxic, inexpensive and earth abundant more than $Cu(In,Ga)Se_2$ materials. For fabricating compound semiconductor thin-film solar cells, CdS is widely used for a buffer layer which fabricated by a chemical bath deposition method (CBD). Through the experiment, we controlled deposition temperature and mol ratio of solution conditions to find the proper grain 크기 and exact composition. The optimum CdS layers were characterized in terms of surface morphology by using a scanning electron microscope (SEM) and atomic force microscope (AFM). The optimized CdS layer process was applied on CZTSe thin-films. The thickness of buffer layer related with device performance of solar cells which controlled by deposition time. Local surface potential of CdS/CZTSe thin-films was investigated by Kelvin probe force microscopy (KPFM). From these results, we can deduce local electric properties with different thickness of buffer layer on CZTSe thin-films. Therefore, we investigated the effect of CdS buffer layer thickness on the CZTSe thin-films for decreasing device losses. From this study, we can suggest buffer layer thickness which contributes to efficiencies and device performance of CZTSe thin-film solar cells.

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Local surface potential and current-voltage behaviors of $Cu(In,Ga)Se_2$ thin-films with different Ga/(In+Ga) content (Ga/(In+Ga) 함량비에 따른 $Cu(In,Ga)Se_2$ 박막의 국소적 영역에서의 표면 퍼텐셜과 전류-전압 특성 연구)

  • Kim, G.Y.;Jeong, A.R.;Jo, W.;Jo, H.J.;Kim, D.H.;Sung, S.J.;Hwang, D.K.;Kang, J.K.;Lee, D.H.
    • 한국태양에너지학회:학술대회논문집
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    • 2012.03a
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    • pp.149-152
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    • 2012
  • $Cu(In,Ga)Se_2$ (CIGS) is one of the most promising photovoltaic materials because of large conversion efficiency which has been achieved with an optimum Ga/(In+Ga) composition in $CuIn_{1-x}Ga_xSe_2$ (X~0.3). The Ga/(In+Ga) content is important to determine band gap, solar cell performances and carrier behaviors at grain boundary (GB). Effects of Ga/(In+Ga) content on physical properties of the CIGS layers have been extensively studied. In previous research, it is reported that GB is not recombination center of CIGS thin-film solar cells. However, GB recombination and electron-hole pair behavior studies are still lacking, especially influence of with different X on CIGS thin-films. We obtained the GB surface potential, local current and I-V characteristic of different X (00.7 while X~0.3 showed higher potential than 100 mV on GBs. Higher potential on GBs appears positive band bending. It can decrease recombination loss because of carrier separation. Therefore, we suggest recombination and electron-hole behaviors at GBs depending on composition of X.

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Surface Modification Using Spiropyran-Derivative and Its Analysis of Surface Potential Induced by UV (스파이로파이란에 의한 표면 개질 및 자외선에 의해 유도된 표면 전위에 대한 분석)

  • Lee, Bong-Soo;Han, Dong-Keun;Son, Tae-Il;Jung, Young-Hwan
    • Journal of the Korean Chemical Society
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    • v.55 no.3
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    • pp.478-485
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    • 2011
  • Merocyanine derivatives transformed from spiropyran-containing compounds by irradiating the light of ultraviolet (UV) include zwitterion of phenolate anion and amine cation. Complexation of this phenolate anion on merocyaninemodified surface and Ni ion among metal ions led to a change of surface charge and it was measured with kelvin prove force microscopy (KFM). We found that the resultant surface potential decreased linearly as UV-exposed time increased, and finally were saturated. Also it was analyzed through XPS the immobilized amount of Ni ions was increased according to increase of UV-exposed time. It is considered that these properties could be applied for detection and a quantitative control of different metal ions. Further research is to aim construct specific scaffold/matrix which enable high selective, high sensitive and, especially, a quantitative immobilization of metal ions-binding biomaterials such as proteins and cells.