• Title/Summary/Keyword: 융합태양전지

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The Effect of PEDOT:PSS Thickness on the Characteristics of Organic-Inorganic Hybrid Solar Cells (PEDOT:PSS의 두께가 유무기 하이브리드 태양전지 성능에 미치는 영향)

  • Kim, Souk Yoon;Han, Joo Won;Oh, Joon-Ho;Kim, Yong Hyun
    • Current Photovoltaic Research
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    • v.7 no.3
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    • pp.61-64
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    • 2019
  • In this study, we investigate organic-inorganic hybrid solar cells with a very simple three-layer structure (Al/n-Si/PEDOT:PSS). The performance of hybrid solar cells is optimized by controlling the sheet resistance and optical transmittance of the PEDOT:PSS layers. As the thickness of the PEDOT:PSS layer decreases, the optical absorption of the n-Si increases, which greatly improves the short-circuit current density ($J_{SC}$) of devices, but the increase in sheet resistance leads to a decrease in the open-circuit voltage ($V_{OC}$) and the fill factor (FF). The solar cell with the 180-nm thick PEDOT:PSS layer shows a highest efficiency of 8.45% ($V_{OC}$: 0.435 V, $J_{SC}$: $33.7mA/cm^2$, FF: 57.5%). Considering these results, it is expected that the optimizing process for the sheet resistance and transmittance of the PEDOT:PSS layer is essential for producing high-efficiency organic-inorganic hybrid solar cells and will serve as an important basis for achieving low-cost, high-efficiency solar cells.

Review of 2-terminal Perovskite/SHJ Tandem Junction Solar Cell Technology (2-Terminal Perovskite/SHJ 탠덤 태양전지 기술 검토)

  • Jang, Minkyu;Jeon, Youngwoo;Kim, Minje;Yi, Junsin;Park, Jinjoo
    • Current Photovoltaic Research
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    • v.10 no.3
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    • pp.84-89
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    • 2022
  • c-Si solar cells currently account for more than 90% of the solar energy market. Research on tandem junction solar cells to overcome efficiency limitations is drawing attention at a time when new technologies are being developed to secure the price competitiveness of silicon solar cells. Among several candidate materials for silicon-based tandem solar cells, perovskite has recently been studied as it is suitable for the ease of process as well as for its properties as a tandem solar cell material. In this study, we want to review the research trends and technology limitations of 2-T Perovskite/SHJ tandem junction solar cells.

Screen Printing Method on Crystalline Silicon Solar Cells : A Review (결정질 실리콘 태양전지에 적용될 스크린 프린팅 기술 개발 동향 : 리뷰)

  • Jeon, Young Woo;Jang, Min Kyu;Kim, Min Je;Yi, Jun Sin;Park, Jinjoo
    • Current Photovoltaic Research
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    • v.10 no.3
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    • pp.90-94
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    • 2022
  • The screen-printing method is the most mature solar cell fabrication technology, which has the advantage of being faster and simpler process than other printing technology. A front metallization printed through screen printing influences the efficiency and manufacturing cost of solar cell. Recent technology development of crystalline silicon solar cell is proceeding to reduce the manufacturing cost while improving the efficiency. Therefore, screen printing requires process development to reduce a line width of an electrode and decrease shading area. In this paper, we will discuss the development trend and prospects of screen-printing metallization using metal paste, which is currently used in manufacturing commercial crystalline silicon solar cells.

GaN를 기반으로 하는 고분자 MDMO-PPV의 두께 변화와 온도에 따른 Photovoltaics의 효율 측정

  • Lee, Sang-Deok;Lee, Chan-Mi;Gwon, Dong-O;Sin, Min-Jeong;Lee, Sam-Nyeong
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.08a
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    • pp.305-305
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    • 2013
  • 태양전지는 무기태양전지와 유기태양전지 등이 연구 되고 있는데 [1] 그 중 유기물질의 장점(높은 수율, solution phase processing, 저비용으로 전력 생산)과 무기재료의 장점(높은 전자 이동도, 넓은 흡수 범위, 우수한 환경 및 열 안정성)을 융합함으로써 장기적 구조안정성의 확보와 광전변환의 고 효율화를 동시에 달성하기 위한 유기무기 하이브리드 태양전지가 최근 큰 관심을 끌고 있다[2]. 본 연구에서는 hybrid photovoltaics에 유기물 MDMO-PPV와 전도성 고분자 PEDOT:PSS를 무기물 GaN 위에 spin coating 하여 두께에 다른 효율을 측정하였다. 유기물 MDMO-PPV는 p-형으로 클로로벤젠, 톨루엔과 같은 유기 용매에 잘 녹으며 HOMO 5.33eV, LUMO 2.97eV, energy band gap 2.4eV이며 99.5%의 순도 물질을 사용하였다. 또한 정공 수송층(hole transport layer, HTL)으로 PEDOT:PSS를 사용하였으며, HOMO 5.0eV, LUMO 3.6eV, energy band gap 1.4eV를 가지며 증류수나 에탄올과 같은 수용성 용매에 잘 녹는 특성을 가지고 있다. 무기물은 III-V 족 물질 n-GaN(002)을 사용하였고 valence band energy 1.9eV, conduction band energy 6.3eV, energy band gap 3.4eV, 높은 전자 이동도와 높은 포화 속도, 광전자 소자에 유리한 광 전기적 특성을 가지고 있다. 기판으로는 GaN와 격자 부정합도와 열팽창계수 부정합도가 큰 Sapphire (Al2O3) 이종 기판을 사용하였다. 전극으로 Au를 사용하였으며 E-beam증착하였다. Reflector로서 Al를 thermal evaporator로 증착하였다 [3]. 실험 과정은 두께에 따른 효율을 알아보기 위해 MDMO-PPV를 900~1,500 rpm으로 spin coating 하였고, 열처리에 따른 효율을 알아보기 위해 열처리 온도 조건을 $110{\sim}170^{\circ}C$의 변화를 주었다. FE-SEM으로 표면과 단면을 관찰하였으며 J-V 특성을 알아보기 위해 각 샘플마다 solar simulator를 사용하여 측정하였고 그 결과를 논의하였다.

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A design of current control system for solar LED lighting (태양광 가로등 전류제어 시스템 설계)

  • Kim, Byun-Gon;Chung, Kyung-Taek;Jeong, Dong-Soo;Le, Jong-In
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2011.10a
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    • pp.795-798
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    • 2011
  • 태양전지를 이용한 LED 가로등 시스템은 태양광을 이용한 신재생에너지를 효율적으로 이용하기 위한 디지털제어 융합기술이다. 고휘도 LED(Light Emitting Diode)를 이용한 조명 시스템은 수명이 길고, 효율이 높고, 디지털 제어가 가능하여 백열등 및 형광등을 대체할 차세대 친환경 조명으로 주목받고 있다. 제안된 시스템은 태양광을 이용한 지능형 LED 가로등 전류 제어 시스템으로서, 배터리 수명을 연장하기 위하여 충전 방식 개선하고, 배터리 충전 상태와 조명시간에 따라 LED 방전 전류를 효율적으로 제어한다.

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Direction and Strategy of PV R&D Technical Programs of Korea for the Next Decade (한국 태양광 산업 정착을 위한 핵심 기술 확보 전략 및 향후 10년 전망)

  • Lim, Hee-Jin;Noh, Hyun-Woo;Lim, Young-Suk;Kim, Dong-Hwan
    • 한국신재생에너지학회:학술대회논문집
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    • 2008.05a
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    • pp.406-407
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    • 2008
  • 지난 8년간 세계 태양광 시장은 연평균 40% 이상 성장하여 2006년 200억 불 규모로 초고속성장을 지속하고 있으며 2010년 1,300억 불, 2012년에는 2,000억 불에 이를 것으로 전망되며, 2015년에는 메모리반도체 시장규모를 추월할 것으로 예상된다. 국내 태양광 산업은2004년 이후 적극적인 기술개발 및 보급정책의 결과 2008년 현재 산업 기반이 조성되었으며 수출산업으로 전환단계에 있다. 태양광 분야는 반도체/디스플레이 시장과 같이 기술력과 자금력을 보유한 소수의 기업이 이익을 독점하는 구조로서 2007년 상위 5개국이 전체 생산량의 85%를 차지하는 실정이다. 이것은 우리가 조기에 기술 및 규모를 확보하지 못할 경우 추후 경쟁에서 매우 불리함을 인식하고 실리콘 소재 기술력의 국산화 및 박막형 태양전지의 양산화 조성 등 세부기술의 분류를 나열하고 2-3년 이내에 상용화 가능한 요소기술, 4-5년 이내에 양산구동력을 구축할 수 있는 핵심기술, 10년 이내에 글로벌경쟁력을 갖출 수 있는 원천기술력을 발굴하고 정부-기업-연구소(대학)가 공동의 지원책을 강구하여 융합된 미래 글로벌 기술력을 확보한 신성장 동력원으로 가치창출 요소를 발굴할 필요성이 있다.

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Analysis on the Advanced Model for Solar Energy Harvesting (개선된 태양 에너지 하베스팅 모델에 대한 분석)

  • Nayantai, Bulganbat;Kong, In-Yeup
    • Journal of the Institute of Convergence Signal Processing
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    • v.14 no.2
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    • pp.99-104
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    • 2013
  • Replacement of sensor nodes for monitoring a wide range area such as mountains and forests needs a lot of time and cost. Using new and renewable energy around them can maximize the lifetime of wireless sensor networks, in which solar energy is infinite energy source that is available in 365 days. To design these sensor networks, solar energy model is essential and to estimate and analyze the overall photovoltaic energy. Using this, we can figure out important data such as the size and performance of solar panel needed. However, existing researches for solar energy harvesting consider parts of many factors to influence the quantity of solar energy gathered. In this paper, we suggest advanced solar energy harvesting model considering angular loss (solar cell panel), overheat loss (solar cell), rechargeable battery heat and cooling for each monthly properties. From our experimental results according to outdoor temperature, panel angle and the surface temperature of solar panel, we show these impact factors are correctly configured.

A Comparison Analysis on the Efficiency of Solar Cells of Shingled Structure with Various ECA Materials (다양한 ECA 소재를 활용한 shingled 구조의 태양전지 효율 비교 분석)

  • Jang, Jae Joon;Park, Jeong Eun;Kim, Dong Sik;Choi, Won Seok;Lim, Donggun
    • Journal of the Korean Solar Energy Society
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    • v.39 no.4
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    • pp.1-9
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    • 2019
  • Modules using 6 inch cells have problems with loss due to empty space between cells. To solve this problem made by shingled structure which can generate more power by utilizing empty space by increasing the voltage level than modules made in 6inch cell. Thus, in this paper, the c-Si cutting cells were produced using nanosecond green laser, and then the ECA was sprayed and cured to perform cutting cell bonding. Three types of ECA materials (B1, B2, B3) with Ag as the main component were used, and experimental conditions varied from 5 to 120 seconds of curing time, 130 to $210^{\circ}C$ of curing temperature, and 1 to 3 of curing numbers. As a results of experiments varying curing time, B1 showed efficiency 19.88% in condition of 60 seconds, B2 showed efficiency 20.15% in 90 seconds, and B3 showed efficiency 20.27% in 60 seconds. In addition, experiments with varying curing temperature, It was confirmed highest efficiency that 20.04% in condition of $170^{\circ}C$ with B1, 20.15% in condition of $150^{\circ}C$ with B2, 20.27% in condition of $150^{\circ}C$ with B3. These are because the Ag particles are densely formed on the surface to make the conduction path. After optimizing the conditions of temperature and curing time, the secondary-tertiary curing experiments were carried out. as the structural analysis, conditions of secondary-tertiary curing showed cracks that due to damp heat aging. As a result, it was found that the ECA B3 had the highest efficiency of 20.27% in condition of 60 seconds of curing time, $150^{\circ}C$ of curing temperature, and single number of curing, and that it was suitable for the manufacture of Solar cell of shingled structure rather than ECA B1 and B2 materials.

Hydrogen Production by Water Splitting with Solar Energy (태양에너지를 이용한 수소제조)

  • Lee Tai-Kyu
    • Journal of Energy Engineering
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    • v.15 no.2 s.46
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    • pp.96-106
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    • 2006
  • Among several different hydrogen production technologies, solar hydrogen system for water splitting is the only clean and sustainable energy supplier. Hydrogen production by water-splitting utilizing solar energy has attracted considerable interest since the pioneering work of Honda and Fujishima in 1979, who discovered that water can be photo-electrochemically decomposed into hydrogen and oxygen using a semiconductor ($TiO_2$) electrode under UV irradiation. Most efforts to utilize solar ray lead to explore visible responding photocatalysts, PEC cells and other fusion technology like bio-photocatalytic conversion. In this paper, photon utilization technologies for water splitting have been briefly reviewed except solar thermal utilization technology.

Electrochmical Performance of Silicon/Carbon Anode Materials for Li-ion Batteries by Silicon Content (실리콘 함량에 따른 리튬이온전지용 실리콘/탄소 음극소재의 전기화학적 특성)

  • Choi, Yeon-Ji;Kim, Sung-Hoon;Ahn, Wook
    • Journal of Convergence for Information Technology
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    • v.12 no.4
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    • pp.338-344
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    • 2022
  • It is necessarily required in developing Si-based anode materials for lithium ion batteries, and the related researches are actively working especially in Si-carbon composite material. On the other hand, the photovoltaic and semiconductor industries discard huge amount of Si resources, facing the environmental issue. In this study, recycled Si resource is adopted to obtain Si-carbon composite for LIB(Lithium-Ion Batteries). In order to improve high-capacity retention characteristics and cycle stability of a Si anode material for the LIB, two differenct composites having a mass ratio of silicon and pitch of 1:1 and 2:1 are synthesized and electrochemical characteristics of the anode material manufactured by simple self-assembly method. This result in excellent initial capacity with stable cycle life, and confirming the potential use of recycled Si material for LIB.