• Title/Summary/Keyword: $Ag_2S$

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Growth and photocurrent properties for the $AgInS_{2}$ epilayers by hot wall ep itaxy (Hot wall epitaxy 방법에 의한 $AgInS_{2}$ 박막의 성장과 광전류특성)

  • Hong, K.J.
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2002.08a
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    • pp.92-96
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    • 2002
  • A silver indium sulfide $(AgInS_{2})$ epilayer was grown by the hot wall epitaxy method, which has not been reported in the literature. The grown $AgInS_{2}$ epilayer has found to be a chalcopyrite structure and evaluated to be high quality crystal. From the photocurrent measurement in the temperature range from 30 K to 300 K, the two peaks of A and B were only observed, whereas the three peaks of A, B, and C were seen in the PC spectrum of 10 K. These peaks are ascribed to the band-ta-band transition. The valence band splitting of $AgInS_{2}$ was investigated by means of the photocurrent measurement. The crystal field splitting, $\Delta_{cr}$, and the spin orbit splitting, $\Delta_{so.}$ have been obtained to be 0.150 eV and 0.009 eV at 10 K, respectively. And, the energy band gap at room temperature has been determined to be 1.868 eV. Also, the temperature dependence of the energy band gap, $E_{g}(T)$, was determined.

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Facile Preparation of Ag2S-CNT Nanocomposites with Enhanced Photo-catalytic Activity

  • Meng, Ze-Da;Sarkar, Sourav;Zhu, Lei;Ullah, Kefayat;Ye, Shu;Oh, Won-Chun
    • Journal of the Korean Ceramic Society
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    • v.51 no.1
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    • pp.1-6
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    • 2014
  • Here we report improved photo-catalytic effect of $Ag_2S$ under visible light using carbon nano-tubes (CNT) modified with $Ag_2S$ nanoparticles. The optical properties, structural properties and compositional analysis, as well as the photo-electrochemical properties of the prepared composites were investigated. It was found that the photocurrent density, and the photo-catalytic effect, was increased by modification of CNT in this way. Compared with the separate effects of $Ag_2S$ and CNT nanoparticles, the photocatalytic effect of CNT-modified-with-$Ag_2S$ composites, increased significantly due to a synergistic effect between the CNT and the $Ag_2S$ nanoparticles.

The Study of Growth and Photoconductive Characterization of $AgInS_2$ Single Crystal Thin Film by Hot Wall Epitaxy (Hot Wall Epitaxy(HWE) 방법에 의한 $AgInS_2$ 단결정 박막 성장과 광전도 특성)

  • 홍광준
    • Korean Journal of Crystallography
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    • v.9 no.2
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    • pp.96-106
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    • 1998
  • 수평 전기로에서 AgInS2 다결정을 합성하여 HWE 방법으로 AgInS2 단결정 박막을 반절연성 GaAs(100) 위에 성장하였다. AgInS2 단결정 박막은 증발원과 기판의 온도를 각각 680℃, 410℃로 성장하였다. 이때 단결정 박막의 결정성이 10 K에서 측정한 광발광 스펙트럼은 597.8 nm(2.0741 eV) 근처에서 엑시톤 방출 스펙트럼이 가장 강하게 나타났으며, 또한 이중결정 X-선 요동곡선(DCRC)의 반폭치(FWHM)도 121 arcsec로 가장 작게 측정되어 최적 성장 조건임을 알 수 있었다. Hall 효과는 van der Pauw 방법에 의해 측정되었으며, 온도에 의존하는 운반자 농도와 이동도는 293 K에서 각각 9.35×1023개/㎥, 2.94×10-2㎡/V·s였다. AgInS2 단결정 박막의 광전류 단파장대 봉우리들로부터 10 K에서 측정된 ΔCr(crystal field splitting)은 0.15eV, ΔSo(spin orbit coupling)는 0.0089 eV였다. 광전도 셀로서 응용성을 알아보기 위해 감도(γ), pc/dc(photocurrent/darkcurrent), 최대허용소비전력(maximum allowable power dissipation: MAPD), 응답시간(response time)등을 측정한 결과, S 증기 분위기에 열처리한 광전도 셀의 경우 γ=0.98, pc/dc=1.02×106, MAPD=312 mW, 오름시간(rise time)=10.4 ms, 내림시간(decay time)=10.8 ms로 가장 좋은 특성을 얻었다.

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Photocurrent Study on the Splitting of the Valence Band and Growth of $AgInS_2$GaAs Single Crystal Thin Film by Hot Wall Epitaxy (Hot Wall Epitaxy(HWE)법에 의한 $AgInS_2$단결성 박막의 성장과 가전자대 갈라짐에대한 광전류 연구)

  • 홍광준
    • Korean Journal of Crystallography
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    • v.12 no.4
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    • pp.197-206
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    • 2001
  • A stoichiometric mixture of evaporating materials for AgInS₂ single crystal thin films was prepared from horizontal electric furnace. To obtain the single crystal thin films. AgInS₂ mixed crystal was deposited on thoroughly etched semi-insulating GaAs(100) substrate by the Hot Wall Epitaxy(HWE)system. The source and substrate temperatures were 680℃ and 410℃, respectively. The crystalline structure of the single crystal thin films was investigated by the photoluminescence and double crystal X-ray diffraction(DCXD). The carrier density and mobility of AgInS₂ single crystal thin film mea-sured from Hall effect by van der Pauw method are 9.35×10/sup 16/㎤ and 294㎠/V·s at 293K respectively. The temperature dependence of the energy band gap of the AgInS₂ obtained from the absorption spectra was well described by the Varshni's relation , E/sub g/(T)=2.1365eV-(9.89×10/sup-3/eV/K/)T²(T+2930K). The crystal field and the spin-orbit splitting energies for the valence band of the AgInS₂ have been estimated to be 0.1541eV and 0.0129 eV, respectively, by means of the photocur-rent spectra and the Hopfield quasicubic model. These results indicate that the splitting of the Δso definitely exists in the Γ/sub 5/ states of the valence band of the AgInS₂ /GaAs epilayer. The three photo-current peaks ovserved at 10K are ascribed to the A₁-, B-₁and C₁-exction peaks for n=1.

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Study of characteristics of $AgGaS_2$/GaAs epilayer by hot wall epitaxy (HWE 방법에 의한 $AgGaS_2$/GaAs epilayer 성장과 특성)

  • Hong, K.J.;Jeong, J.W.;Bang, J.J.;Jin, Y.M.;Kim, S.H.;Yoe, H.S.;Yang, H.J.
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2002.08a
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    • pp.84-91
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    • 2002
  • The stochiometric composition of $AgGaS_2$/GaAs polycrystal source materials for the $AgGaS_2$/GaAs epilayer was prepared from horizontal furnace. From the extrapolation method of X-ray diffraction patterns it was found that the polycrystal $AgGaS_2$/GaAs has tetragonal structure of which lattice constant an and Co were 5.756 $\AA$ and 10.305 $\AA$, respectively. $AgGaS_2$/GaAs epilayer was deposited on throughly etched GaAs(100) substrate from mixed crystal $AgGaS_2$/GaAs by the Hot Wall Epitaxy (HWE) system. The source and substrate temperature were $590^{\circ}C$ and $440^{\circ}C$ respectively. The crystallinity of the grown $AgGaS_2$/GaAs epilayer was investigated by the DCRC (double crystal X-ray diffraction rocking curve). The optical energy gaps were found to be 2.61 eV for $AgGaS_2$/GaAs epilayer at room temperature. The temperature dependence of the photocurrent peak energy is well explained by the Varshni equation, then the constants in the Varshni equation are given by $\alpha=8.695{\times}10^{-4}$ eV/K, and $\beta=332K$. From the photocurrent spectra by illumination of polarized light of the $AgGaS_2$/GaAs epilayer, we have found that crystal field splitting ${\Delta}Cr$ was 0.28 eV at 20 K. From the PL spectra at 20 K, the peaks corresponding to free and bound excitons and a broad emission band due to D-A pairs are identified. The binding energy of the free excitons are determined to be 0.2676 eV and 0.2430 eV and the dissociation energy of the bound excitons to be 0.4695 eV.

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Ag Nanowire의 기계적 압착을 통한 투명전극의 표면특성 변화에 대한 연구

  • Kim, Byeong-Ryang;Hong, Yeong-Gyu;Sin, Jin-Guk
    • Proceedings of the Korean Vacuum Society Conference
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    • 2014.02a
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    • pp.177.2-177.2
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    • 2014
  • 현재 플렉시블 전자기기에 대한 수요가 증가함에 따라 Ag nanowire는 ITO 대체용 투명전극 물질로 주목받고 있다. Ag nanowrie 투명전극은 면저항이 약 $300{\Omega}/sq$ 정도인 PEDOT 투명전극 보다 성능이 우수하지만, 표면에 나노와이어의 적층으로 100 nm 크기의 돌기들이 존재하여 균일한 표면특성이 요구되는 투명전극에 불리한 요인이 된다. Ag nanowire를 투명전극으로 사용하여 OLED를 제조할 경우, 40 nm~100 nm의 두께를 갖는 HTL층보다 투명전극 표면의 Rpv 값이 큰 경우 Leakage current가 증가하므로 이러한 돌기들을 감소시키는 것이 Ag nanowire를 투명전극에 적용할 수 있는 중요한 요건이 된다. 본 연구에서는 PET film 위에 Ag nanowire를 얇게 코팅하여 투과도 약 87%, 면저항 $20{\Omega}/sq$ 이하의 특성을 갖는 투명전극을 제조하였다. 그리고 Ag nanowire를 코팅한 투명전극의 표면 Roughness를 감소시키기 위해 Roll press를 이용하여 나노와이어를 물리적으로 압착하였고, 압착된 Ag nanowire 투명전극 위에 PEDOT를 코팅하여 전도도 및 표면 Roughness를 감소시키는 연구를 진행하였다.

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Temperature dependence of photocurrent spectra for $AgInS_2$ epilayers grown by hot wall epitaxy

  • Baek, Seung-Nam;Hong, Kwang-Joon
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2007.06a
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    • pp.123-124
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    • 2007
  • A silver indium sulfide ($AgInS_2$) epilayer was grown by the hot wall epitaxy method, which has not been reported in the liteniture. The grown $AgInS_2$ epilayer has found to be a chalcopyrite structure and evaluated to be high quality crystal. From the photocurrent measurement in the temperature range from 30 K to 300 K, the two peaks of A and B were only observed, whereas the three peaks of A, B, and C were seen in the PC spectrum of 10 K. These peaks are ascribed to the band-to-band transition. The valence band splitting of $AgInS_2$ was investigated by means of the photocurrent measurement. The temperature dependence of the energy band gap of the $AgInS_2$ obtained from the photocurrent spectrum was well described by the Varshni's relation, $E_g(T)=\;E_g(0)\;eV-(7.78\;{\times}\;10^{-4}\;eV/K)T^2/(T\;+\;116\;K\;K)$. Also, Eg(0) is the energy band gap at 0 K, which is estimated to be 2.036 eV at the valence band state A and 2.186 eV at the valence band state B.

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Characteristics of the Photoinduced Anisotropy(PA) in Ag/AsGeSeS Multilayer Thin Films (Ag/AsGeSeS 다층박막의 광유기 이방성(PA) 특성)

  • Yeo, Cheol-Ho;Na, Su-Woong;Shin, Kyung;Park, Jeong-Il;Chung, Hong-Bay
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.16 no.2
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    • pp.144-150
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    • 2003
  • The chalcogenide glasses of thin films have the superior property of photoinduced anisotrophy(PA). In this study, we observed the linear dichroism using the irradiation with Polarized He-Ne laser light in the Ag/As$_{40}$ Ge$_{10}$Se$_{15}$ S$_{35}$ multi-layer. Multilayer structures were formed by alternating metal(Ag) and chalcogenide(As$_{40}$ Ge$_{10}$Se$_{15}$ S$_{35}$) thin film. The Ag Polarized photodoping result in reducing the time of saturation anisotropy and increasing the sensitivity of linearly anisotropy intensity As the results, the Ag polarized photodoping will be have a capability of new method that suggests more improvement of photoinduced anisotropy property in the thin films of chalcogenide.ogenide.ide.

화학적 방법으로 성장된 ZnO nanorod 구조에서 Ag 나노입자의 영향

  • Go, Yeong-Hwan;Yu, Jae-Su
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.189-189
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    • 2010
  • ZnO nanorods 구조는 광소자 및 태양광 소자의 성능을 향상시키기 위해서 무반사계수, 광추출효율, 전기적, 열적 전도도를 개선시킬 수 있어, 매우 큰 관심을 가지고 왔다. 또한 Ag 나노입자는 표면 플라즈몬 효과를 이용하여 LED나 태양전지에 응용하여 소자의 성능이 향상됨을 이론적, 실험적으로 증명되어 왔으며, 현재에도 활발한 연구가 진행되고 있다. 이러한 ZnO nanorods 특성과 Ag 나노입자의 표면 플라즈몬 효과를 이용하기 위해서, 본 연구에서는 Ag 나노 입자를 형성된 ZnO seed층에 ZnO nanorods를 성장시켰다. 시료를 제작을 위해서 비교적 성장이 간단하고 저온성장이 가능한 화학적 합성방법을 이용하였다. Ag 나노입자가 형성된 ZnO seed층 제작을 위해서 먼저 Si 기판위에 RF magnetron 스퍼터를 이용하여 고진공, $N_2$ 분위기에서 일정한 두께로 증착을 하였으며, 이후 Ag 박막을 thermal evaporator로 10 nm 두께로 증착하였다. 그 다음, 크기가 다른 Ag 나노입자를 형성을 위해서 rapid thermal annealing (RTA)을 여러 가지 온도에서 수행하였다. 그리고 이러한 시료들를 이용하여, ZnO nanorods를 성장하기 위하여, $90-95^{\circ}$의 온도에서 zinc nitrate $Zn(NO_3)_2{\cdot}6H_2O$과 hexamethylentetramines (HMT)으로 혼합된 용액에 담가두어 ZnO nanorods를 성장시켰다. Ag 나노입자의 크기에 따라 ZnO nanorods의 구조와 형태에 대하여 어떠한 영향을 주는지를 관찰하기 위해 field emission scanning electron microscopy (FE-SEM)을 이용하여 측정하였으며, Ag와 ZnO의 성분분석과 결정성을 조사하기 위해 X-ray diffraction (XRD)을 이용하여 분석하였다. 그리고 표면 플라즈몬에 의한 영향에 대하여 조사하기 위해, ZnO nanorods와 Ag 나노입자가 형성된 ZnO nanorods를 UV-Vis-NIR spectrophotometer을 이용하여 흡수계수와 반사계수를 비교하여 측정하였으며. 태양전지의 성능향상을 수 있음을 이론적으로 계산하였다. 그리고 또한 photoluminescence (PL) 분석을 수행하여 ZnO nanorods의 구조에 대하여 Ag 나노입자의 영향에 대한 광특성을 측정하였다.

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Optical Properties of $Sb_2S_3$ and Ag Doped $Sb_2S_3$ Thin Films ($Sb_2S_3$ 박막과 Ag 도핑한 $Sb_2S_3$ 박막의 광학적인 특성)

  • Kim, Jong-Ki;Park, Jung-Il;Lee, Hyun-Yong;Lee, Young-Jong;Chung, Hong-Bay
    • Proceedings of the KIEE Conference
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    • 1999.07d
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    • pp.1959-1961
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    • 1999
  • We prepared the $Ag[100\AA])/Sb_2S_3[3000\AA]$ films using the thermal evaporator. The films were exposed by the blue-pass filtered mercury lamp and the polarized He-Ne laser. We have investigated the dependence of the induced optical energy with Ag-doping and have observed the transmittance variation near the optical absorption edge with the light source. It was shown that the energy gap of this thin film was largely changed by exposing He-Ne laser, the light source of the near energy gap of this thin film. It is because of the structural change from Ag-doping. It is investigated that the dissolution, the diffusion, and the field effect of the Ag thin film generate the Ag spatial distribution.

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