• 제목/요약/키워드: $Cu(In_x,Ga_{1-x})Se_2$

검색결과 76건 처리시간 0.022초

광양 폐금광 수계에 형성된 철수산화물에 대한 광물학적 및 지구화학적 특성 (Mineralogy and Geochemistry of Iron Hydroxides in the Stream of Abandoned Gold Mine in Kwangyang, Korea)

  • 박천영;정연중;김성구
    • 한국지구과학회지
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    • 제22권3호
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    • pp.208-222
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    • 2001
  • 이 연구는 전남 광양광산과 그 주변의 하천에 형성되어 있는 부유성 비정질 퇴적물의 지구화학적 특성을 밝히기 위해 수행되었다. 부유성 비정질 퇴적물의 주요성분은 Fe$_2$O$_3$이며, Fe$_2$O$_3$의 함량은 17.9${\cdot}$72.3wt.% 범위로 나타난다. Fe함량이 증가하면 Si, Al, Mg, Na, K, Mn 및 Ti 함량이 감소하며 Te, Au, Ga, Bi, Cd, Hg, Sb, 및 Se등의 함량은 증가한다. 하상 침전물인 비정질 퇴적물에는 As(최대 54.9ppm), Bi(최대 3.77ppm), Cd(최대 3.65ppm), Hg(최대64ppm), Sb(최대 10.1ppm), Cu (최대 37.1ppm), Mo(최대 8.86ppm), Pb(최대 9.45ppm) 및 Zn(최대 29.7ppm) 등의 중금속원소가 농집되어 있다. 황갈색 침전물에는 Au(최대 4.40ppm)와 Ag(최대 0.24ppm) 함량이 매우 높게 나타나며, Au함량은 하천의 상류지역에 높은 함량을 보이다가 하류지역으로 갈수록 그 함량이 감소한다. 반면에 Ag 함량은 상류지역의 하천에 낮은 함량을 보이다가 하류지역으로 갈수록 그 함량이 증가하여 나타난다. XRD분석에서 하상의 황갈색 침전물은 X-선회절선이 뚜렷하지 않은 비정질이거나 결정도가 미약한 철수산화물로 밝혀졌으며, 석영, 침철석, 고령토, 일라이트 등이 관찰된다. IR분석에서 비정질 하상 퇴적물은 OH기, H$_2$O, SO$_4$ 및 Fe-O 기에 의한 흡수밴드가 관찰된다.

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유기 태양전지의 개발 현황과 기술 과제 (Technical Tasks and Development Current Status of Organic Solar Cells)

  • 장지근;박병민;임성규;장호정
    • 한국재료학회지
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    • 제24권8호
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    • pp.434-442
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    • 2014
  • Serious environmental problems have been caused by the greenhouse effect due to carbon dioxide($CO_2$) or nitrogen oxides($NO_x$) generated by the use of fossil fuels, including oil and liquefied natural gas. Many countries, including our own, the United States, those of the European Union and other developed countries around the world; have shown growing interest in clean energy, and have been concentrating on the development of new energy-saving materials and devices. Typical non-fossil-fuel sources include solar cells, wind power, tidal power, nuclear power, and fuel cells. In particular, organic solar cells(OSCs) have relatively low power-conversion efficiency(PCE) in comparison with inorganic(silicon) based solar cells, compound semiconductor solar cells and the CIGS [$Cu(In_{1-x}Ga_x)Se_2$] thin film solar cells. Recently, organic cell efficiencies greater than 10 % have been obtained by means of the development of new organic semiconducting materials, which feature improvements in crystalline properties, as well as in the quantum-dot nano-structure of the active layers. In this paper, a brief overview of solar cells in general is presented. In particular, the current development status of the next-generation OSCs including their operation principle, device-manufacturing processes, and improvements in the PCE are described.

Synthesis and Characterization of CZTS film deposited by Chemical Bath Deposition method

  • Arepalli, Vinaya Kumar;Kumar, Challa Kiran;Park, Nam-Kyu;Nang, Lam Van;Kim, Eui-Tae
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2012년도 춘계학술발표대회
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    • pp.99.1-99.1
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    • 2012
  • The thin-film photovoltaic absorbers (CdTe and $Cu(In,Ga)Se_2$) can achieve solar conversion efficiencies of up to 20% and are now commercially available, but the presence of toxic (Cd,Se) and expensive elemental components (In, Te) is a real issue as the demand for photovoltaics rapidly increases. To overcome these limitations, there has been substantial interest in developing viable alternative materials, such as $Cu_2ZnSnS_4$ (CZTS) is an emerging solar absorber that is structurally similar to CIGS, but contains only earth abundant, non-toxic elements and has a near optimal direct band gap energy of 1.4 - 1.6 eV and a large absorption coefficient of ~104 $cm^{-1}$. The CZTS absorber layers are grown and investigated by various fabrication methods, such as thermal evaporation, e-beam evaporation with a post sulfurization, sputtering, non-vacuum sol-gel, pulsed laser, spray-pyrolysis method and electrodeposition technique. In the present work, we report an alternative aqueous chemical approach based on chemical bath deposition (CBD) method for large area deposition of CZTS thin films. Samples produced by our method were analyzed by scanning electron microscopy, X-ray diffraction, transmission electron microscopy, absorbance and photoluminescence. The results show that this inexpensive and relatively benign process produces thin films of CZTS exhibiting uniform composition, kesterite crystal structure, and some factors like triethanolamine, ammonia, temperature which strongly affect on the morphology of CZTS film.

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Morphological Structural and Electrical Properties of DC Magnetron Sputtered Mo Thin Films for Solar Cell Application

  • Fan, Rong;Jung, Sung-Hee;Chung, Chee-Won
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제42회 동계 정기 학술대회 초록집
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    • pp.389-389
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    • 2012
  • Molybdenum is one of the most important materials used as a back ohmic contact for $Cu(In,Ga)(Se,S)_2$ (CIGS) solar cells because it has good electrical properties as an inert and mechanically durable substrate during the absorber film growth. Sputter deposition is the common deposition process for Mo thin films. Molybdenum thin films were deposited on soda lime glass (SLG) substrates using direct-current planar magnetron sputtering technique. The outdiffusion of Na from the SLG through the Mo film to the CIGS based solar cell, also plays an important role in enhancing the device electrical properties and its performance. The structure, surface morphology and electrical characteristics of Mo thin films are generally dependent on deposition parameters such as DC power, pressure, distance between target and substrate, and deposition temperature. The aim of the present study is to show the resistivity of Mo layers, their crystallinity and morphologies, which are influenced by the substrate temperature. The thickness of Mo films is measured by Tencor-P1 profiler. The crystal structures are analyzed using X-ray diffraction (XRD: X'Pert MPD PRO / Philips). The resistivity of Mo thin films was measured by Hall effect measurement system (HMS-3000/0.55T). The surface morphology and grain shape of the films were examined by field emission scanning electron microscopy (FESEM: Hitachi S-4300). The chemical composition of the films was obtained by the energy dispersive X-ray spectroscopy (EDX). Finally the optimum substrate temperature as well as deposition conditions for Mo thin films will be developed.

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CBD 방법에 의한 ZnS 버퍼층 형성의 착화제 농도에 따른 영향 (Effect of the Concentration of Complexing Agent on the Formation of ZnS Buffer Layer by CBD Method)

  • 권상직;유인상
    • 한국전기전자재료학회논문지
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    • 제30권10호
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    • pp.625-630
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    • 2017
  • ZnS was chemically deposited as a buffer layer alternative to CdS, for use as a Cd-free buffer layer in $Cu(In_{1-x}Ga_x)Se_2$ (CIGS) solar cells. The deposition of a thin film of ZnS was carried out by chemical bath deposition, following which the structural and optical properties of the ZnS layer were studied. For the experiments, zinc sulfate hepta-hydrate ($ZnSO_4{\cdot}7H_2O$), thiourea ($SC(NH_2)_2$), and ammonia ($NH_4OH$) were used as the reacting agents. The mole concentrations of $ZnSO_4$ and $SC(NH_2)_2$ were fixed at 0.03 M and 0.8 M, respectively, while that of ammonia, which acts as a complexing agent, was varied from 0.3 M to 3.5 M. By varying the mole concentration of ammonia, optimal values for parameters like optical transmission, deposition rate, and surface morphology were determined. For the fixed mole concentrations of $0.03M\;ZnSO_4{\cdot}7H_2O$ and $0.8M\;SC(NH_2)_2$, it was established that 3.0 M of ammonia could provide optimal values of the deposition rate (5.5 nm/min), average optical transmittance (81%), and energy band gap (3.81 eV), rendering the chemically deposited ZnS suitable for use as a Cd-free buffer layer in CIGS solar cells.

Cracker 황화법에 의한 ZnS 버퍼층의 특성과 Cu(In,Ga)$Se_2$ 박막 태양전지 제작

  • 박상우;조대형;이우정;위재형;한원석;정치섭;김제하;정용덕
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.309.1-309.1
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    • 2013
  • 현재까지 CIGS 박막 태양전지는 습식공정인 화학적 용액성장법을 사용하여 형성된 CdS버퍼층을 적용할 경우에 가장 높은 효율을 보이고 있다. 그러나, Cd의 독성 문제와 진공 공정과 호환되지 않는 습식공정 때문에 비독성 건식 공정 버퍼층에 대한 연구가 활발히 진행되고 있다. 습식 공정 CdS 버퍼층을 대체하기 위하여 CdS에 비해 밴드갭이 커서 단파장에서 광 손실이 적은 ZnS 버퍼층을 cracker 황화법을 이용하여 제작하여 CIGS 박막 태양전지에 적용하였다. ZnS 버퍼층을 성장시키기 위해 DC 스퍼터를 사용하여 Zn 박막을 증착한 후, cracker를 사용하여 황화반응을 시켰다. cracker의 cracking zone 온도에 따른 S 반응성을 ZnS 박막의 투과도 변화를 통하여 관찰하였다. 성장된 ZnS 박막은 X-ray diffraction와 Rutherford backscattering spectrometry을 이용하여 박막의 결정성과 조성을 분석하였고, SEM 측정을 통하여 박막의 단면 및 표면 형상을 관찰하였다. 그리고 reflection electron energy loss spectroscopy 분석을 통해 밴드갭을 측정하였다. $700^{\circ}C$의 cracking zone 온도, 3 nm의 Zn 두께, 1 분의 황화공정 조건에서 제작된 ZnS 박막을 CIGS 태양전지의 버퍼층으로 적용한 결과, 반사방지막 없이 12.6%의 변환효율을 얻었다.

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