• Title/Summary/Keyword: Cu-Ga-In

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Content of Heavy Metals in Coal Fly Ash from the Samcheonpo and the Seocheon Power Plant (삼천포와 서천 화력발전소에서 발생하는 석탄회중의 중금속 함량에 관한 연구)

  • Yoon, Chung-Han;Oh, Keun-Chang;Kim, Yong-Woong;Shin, Bang-Sup
    • Economic and Environmental Geology
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    • v.28 no.2
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    • pp.147-154
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    • 1995
  • Coal fly ashes collected from the Samcheonpo and the Seocheon Power Plants were analyzed for major and minor components and heavy metals such as As, Cd, Co, Cr, Cu, Ga, Hg, Mo, Ni, Pb, Sb, V and Zn in order to suggest basic data to apply coal fly ash as fertilizer or soil ameliorator. The specific gravity of the samples was less than 2.0, and amounts of organic matter range from 5.0% to 12.3%. The identified minerals by XRD were mainly quartz, mullite and pyrite in anthracite coal, and mainly quartz and mullite in bituminous coal. Generally, the contents of heavy metal elements analyzed were lower less than those of soil, though higher in some samples. Element couples of some elements( e.g., As-Mo, Zn ; Mo-As, Sb, V, Zn ; Sb-Zn ) show positive correlations with each other, but the high correlations of toxic elements such as As, Pb, Cd and Hg indicate to give attention to apply coal fly ash as fertilizer or soil ameliorator.

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Electrolytic Hydrogen Production Using Solution Processed CIGS thin Film Solar Cells (용액 공정 CIGS 박막 태양 전지를 이용한 물 분해 수소 생산)

  • Jeon, Hyo Sang;Park, Se Jin;Min, Byoung Koun
    • Transactions of the Korean hydrogen and new energy society
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    • v.24 no.4
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    • pp.282-287
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    • 2013
  • Hydrogen production from water using solar energy is attractive way to obtain clean energy resource. Among the various solar-to-hydrogen production techniques, a combination of a photovoltaic and an electrolytic cell is one of the most promising techniques in term of stability and efficiency. In this study, we show successful fabrication of precursor solution processed CIGS thin film solar cells which can generate high voltage. In addition, CIGS thin film solar cell modules producing over 2V of open circuit voltage were fabricated by connecting three single cells in series, which are applicable to water electrolysis. The operating current and voltage during water electrolysis was measured to be 4.23mA and 1.59V, respectively, and solar to hydrogen efficiency was estimated to be 3.9%.

Organic-Inorganic Perovskite for Highly Efficient Tandem Solar Cells (고효율 적층형 태양전지를 위한 유무기 페로브스카이트)

  • Park, Ik Jae;Kim, Dong Hoe
    • Ceramist
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    • v.22 no.2
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    • pp.146-169
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    • 2019
  • To overcome the theoretical efficiency of single-junction solar cells (> 30 %), tandem solar cells (or multi-junction solar cells) is considered as a strong nominee because of their excellent light utilization. Organic-inorganic halide perovskite has been regarded as a promising candidate material for next-generation tandem solar cell due to not only their excellent optoelectronic properties but also their bandgap-tune-ability and low-temperature process-possibility. As a result, they have been adopted either as a wide-bandgap top cell combined with narrow-bandgap silicon or CuInxGa(1-x)Se2 bottom cells or for all-perovskite tandem solar cells using narrow- and wide-bandgap perovskites. To successfully transition perovskite materials from for single junction to tandem, substantial efforts need to focus on fabricating the high quality wide- and narrow-bandgap perovskite materials and semi-transparent electrode/recombination layer. In this paper, we present an overview of the current research and our outlook regarding perovskite-based tandem solar technology. Several key challenges discussed are: 1) a wide-bandgap perovskite for top-cell in multi-junction tandem solar cells; 2) a narrow-bandgap perovskite for bottom-cell in all-perovskite tandem solar cells, and 3) suitable semi-transparent conducting layer for efficient electrode or recombination layer in tandem solar cells.

Cu2ZnSn(S,Se)4 Thin Film Solar Cells Fabricated by Sulfurization of Stacked Precursors Prepared Using Sputtering Process

  • Gang, Myeng Gil;Shin, Seung Wook;Lee, Jeong Yong;Kim, Jin Hyeok
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.08a
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    • pp.97-97
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    • 2013
  • Recently, Cu2ZnSn(S,Se)4 (CZTSS), which is one of the In- and Ga- free absorber materials, has been attracted considerable attention as a new candidate for use as an absorber material in thin film solar cells. The CZTSS-based absorber material has outstanding characteristics such as band gap energy of 1.0 eV to 1.5 eV, high absorption coefficient on the order of 104 cm-1, and high theoretical conversion efficiency of 32.2% in thin film solar cells. Despite these promising characteristics, research into CZTSS based thin film solar cells is still incomprehensive and related reports are quite few compared to those for CIGS thin film solar cells, which show high efficiency of over 20%. I will briefly overview the recent technological development of CZTSS thin film solar cells and then introduce our research results mainly related to sputter based process. CZTSS thin film solar cells are prepared by sulfurization of stacked both metallic and sulfide precursors. Sulfurization process was performed in both furnace annealing system and rapid thermal processing system using S powder as well as 5% diluted H2S gas source at various annealing temperatures ranging from $520^{\circ}C$ to $580^{\circ}C$. Structural, optical, microstructural, and electrical properties of absorber layers were characterized using XRD, SEM, TEM, UV-Vis spectroscopy, Hall-measurement, TRPL, etc. The effects of processing parameters, such as composition ratio, sulfurization pressure, and sulfurization temperature on the properties of CZTSS absorber layers will be discussed in detail. CZTSS thin film solar cell fabricated using metallic precursors shows maximum cell efficiency of 6.9% with Jsc of 25.2 mA/cm2, Voc of 469 mV, and fill factor of 59.1% and CZTS thin film solar cell using sulfide precursors shows that of 4.5% with Jsc of 19.8 mA/cm2, Voc of 492 mV, and fill factor of 46.2%. In addition, other research activities in our lab related to the formation of CZTS absorber layers using solution based processes such as electro-deposition, chemical solution deposition, nano-particle formation will be introduced briefly.

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Effects of pH of Reaction Solution on the Structural and Optical Properties of CdS Thin Films for Solar Cell Applications (태양전지용 CdS 박막의 구조적 및 광학적 특성에 미치는 반응용액의 pH 영향)

  • Lee, Jae-Hyeong
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.24 no.8
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    • pp.616-621
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    • 2011
  • In this paper, CdS thin films, which were widely used window layer of the CdTe and the Cu(In,Ga)$Se_2$ thin film solar cell, were grown by chemical bath deposition, and effects of pH of reaction solution on the structural and optical properties were investigated. For pH<10.5, as the pH of reaction solution was higher, the deposition rate of CdS films was increased by improving ion-by-ion reaction in the substrate surface and the crystallinity of the films was improved. However, when the pH was higher than 10.5, the deposition rate was decreased because of smaller $Cd^{2+}$ ion concentration in the reaction solution. Also, the crystallinity of the films were deteriorated. The CdS films deposited at lower pH showed poor optical transmittance due to adsorbed colloidal particles, while the transmittance was improved for higher pH.

Fabrication of Mo Thin Film by Hydrogen Reduction of MoO3 Powder for Back Contact Electrode of CIGS (MoO3 분말의 수소환원을 통한 CIGS계 후면 전극용 Mo 박막제조)

  • Jo, Tae Sun;Kim, Se Hoon;Kim, Young Do
    • Korean Journal of Metals and Materials
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    • v.49 no.2
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    • pp.187-191
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    • 2011
  • In order to obtain a suitable back contacting electrode for $Cu(InGa)Se_2$-based photovoltaic devices, a molybdenum thin film was deposited using a chemical vapor transport (CVT) during the hydrogen reduction of $MoO_3$ powder. A $MoO_2$ thin film was successfully deposited on substrates by using the CVT of volatile $MoO_3(OH)_2$ at $550^{\circ}C$ for 60 min in a $H_2$ atmosphere. The Mo thin film was obtained by reduction of $MoO_2$ at $650^{\circ}C$ in a $H_2$ atmosphere. The Mo thin film on the substrate presented a low sheet resistance of approximately $1{\Omega}/sq$.

Changes of Photovoltaic Properties of Flexible CIGS Solar Cell Under Mechanical Bending Stress (플렉서블 CIGS 태양전지의 굽힘 응력에 의한 셀 특성 변화 연구)

  • Kim, Sungjun;Kim, Jeha
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.33 no.3
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    • pp.163-168
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    • 2020
  • We studied the change of photovoltaic properties of a flexible CuInxGa(1-x)Se2 (CIGS) solar cell fabricated on polyimide by mechanical bending with curvature radii of 75 mm (75R) and 20 mm (20R). The flexible CIGS cells were flattened on a PET film, then placed and forced against the surface of a curved block fabricated with pre-designed curvatures. Both up (compressive) and down (tensile) bending were applied to a specimen of CIGS on PET with curvatures of 75R and 20R for 10,000 times and 2,000 times, respectively. From J-V measurements, we found that the conversion efficiency (Eff.) was reduced by 3% and 4% for up-and down-bending, respectively, at curvature 75R; it was greatly reduced by 15% for curvature 20R in the up-bending. However, the open circuit voltage (Voc) and short-circuit current density (Jsc) seemed to change little, within 3%, for the applied mechanical stresses. The degradation in Eff. resulted from the deterioration of the series (Rs) and shunt (Rsh) resistances of the solar cell.

고온 및 고온고습 가속시험에 의한 CIGS PV 모듈의 열화거동

  • Lee, Dong-Won;Nam, Song-Min;Kim, Yong-Nam
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.08a
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    • pp.421-421
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    • 2012
  • Cu(In,Ga)$Se_2$ (CIGS) 화합물은 직접천이형 반도체로 열적으로 매우 안정하고 에너지밴드갭이 1.04 eV로 이상적인 값에 가깝고, 특히 높은 광흡수계수를 가지기 때문에 박막 태양전지로서 커다란 응용 잠재력을 갖고 있는 광흡수층 재료이다. CIGS 화합물 박막 태양전지의 효율은 연구실에서는 ~20%를 높은 효율을 보고하고 있으며, 모듈급에서도 ~13%의 효율을 보이고 있다. 그러나 CIGS 박막 태양전지를 대면적 또는 양산화에 적용하기 위해서는 20년 이상의 장기적인 수명을 보장할 수 있는 내구성을 갖추어야 한다. 본 연구에서는 CIGS 모듈의 장기적인 신뢰성을 평가하기 위해 CIGS PV 모듈을 대상으로 대표적인 고온 고습 조건인 IEC-61646 규격을 이용하여 $85^{\circ}C$/85% RH에서 1000시간 동안 가속시험이 수행되었고, 고온 환경하에서 모듈의 성능 저하에 미치는 영향을 고찰하기 위해 모듈을 $85^{\circ}C$에서 1000시간 노출시켰다. 두 종류의 가속 스트레스시험 후에 모듈들의 외형적인 노화현상 및 전기적 열화 성능을 분석하였다. 또한 모듈의 효율저하의 원인을 규명하기 위해 모듈 구성 재료 중 충진재료로 사용하는 EVA sheet와 투명전극 AZO를 대상으로 고장분석을 수행하였다. AZO의 미세구조 관찰, 결정상 분석, XPS 분석 및 전기적 분석과 EVA sheet의 FT-IR 분석과 TG-DSC 분석들을 종합하여 CIGS PV 모듈의 성능저하의 원인을 규명하였다.

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Solvothermal 법을 이용한 단일상 CIGS ($CuInGaSe_2$) powder 합성

  • Gu, Sin-Il;Hong, Seung-Hyeok;Sin, Hyo-Sun;Yeo, Dong-Hun;Hong, Yeon-U;Kim, Jong-Hui;Nam, San
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2010.06a
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    • pp.225-225
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    • 2010
  • 박막 방식의 CIGS 태양전지는 공정이 복잡하고 대면적화가 어렵다는 단점을 가지고 있다. 이를 개선하기 위하여 후막 방식을 이용한 CIGS 태양전지에 대한 연구의 필요성이 대두되어지고 있다. 스크린 프린팅과 같은 후막공정은 나노 CIGS powder가 필요하다. CIGS 합성 방법 중에 solvothermal 방식이 다른 방식에 비해 균일한 크기의 구형의 나노입자를 대량생산이 쉽기 때문에 많이 연구되어지고 있다. 선행 연구 결과들은 CIS, CIGS 및 CGS는 solvothermal 법으로 합성 시 3개의 상이 모두 합성되며, 합성조건에 따라 상의 조성의 조절이 되지 않는다. 따라서 현재까지 solvothermal 법으로는 단일상의 CIGS 상의 합성이 보고되지 않고 있다. 본 연구에서는, solvothermal 방식을 이용하여 후막공정을 위한 CIGS powder를 합성하였다. 원료, 용매 및 합성 온도 등의 변화에 따른 상의 변화를 측정하였고, 원료의 농도에 따른 powder의 크기 및 형상을 제어 하였다. 또한 CIGS powder를 이용하여 페이스트을 제조한 후, 이 페이스트를 가지고 태양전지를 위한 치밀한 후막을 제조할 수 있었다.

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$Cu(In,Ga)Se_2$ 박막 태양전지 제작을 위한 폴리이미드 기판의 열분석 및 후면전극 특성 분석

  • Park, Su-Jeong;Jo, Dae-Hyeong;Jeong, Yong-Deok;Kim, Je-Ha
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.02a
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    • pp.593-593
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    • 2012
  • CIGS 박막 태양전지는 일반적으로 soda-lime glass(SLG)를 기판으로 사용하여 SLG/Mo/CIGS/CdS/ZnO/ITO/Grid의 구조로 제작된다. 하지만 SLG를 기판으로 사용할 경우, 유리의 특성상 무게가 무겁고, 유연성이 없기 때문에 건축물 적용에 적합하지 않다. 이러한 문제점을 극복하기 위해 가볍고 유연한 금속 및 폴리이미드 기판을 이용한 CIGS 태양전지가 널리 연구되고 있다. 그러나, 폴리이미드 기판의 경우, 특성이 우수한 CIGS 박막을 얻기 위한 고온 공정을 사용할 수 없기 때문에 이에 대한 고려가 필요하다. 본 논문에서는 CIGS 박막 태양전지 제작을 위한 폴리이미드 기판의 특성과 그 위에 형성한 후면 전극의 특성을 논의하고자 한다. 4종류의 폴리이미드 기판에 대한 열 특성을 시차주사열량계(differential scanning calorimeter)와 열중량분석기(thermogravimetric analysis), 열기계분석기(thermo mechanical anaylsis)를 이용해 분석하였다. 또한 Mo 후면 전극을 DC-sputter를 이용해 형성한 후, XRD와 AFM, 4-point probe를 이용하여 결정성 및 표면 거칠기, 면저항을 분석하였다. 결정성과 거칠기는 SLG에 증착했을 때와 동일한 결과를 보였으며, 면저항은 폴리이미드 필름에 증착 할 경우 더 크게 측정되었다. 본 연구는 중소기업청 산연기술개발사업(SL122689) 및 과학기술연합대학원대학교(UST)의 지원을 받아 수행된 "공동연구 지원사업"의 연구결과입니다.

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