• Title/Summary/Keyword: CIGS($Cu(In,Ga)Se_2$)

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A study on the CIGS thin film solar cells by Ga content (Ga 함유량에 따른 $Cu(In_{1-x}Ga_{x})Se_2$ 박막 태양전지에 관한 연구)

  • Song, Jin-Seob;Yoon, Jae-Ho;Ahn, Se-Jin;Yoon, Kyung-Hoon
    • 한국신재생에너지학회:학술대회논문집
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    • 2007.06a
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    • pp.339-342
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    • 2007
  • $Cu(In_{1-x}Ga_{x})Se_2$(CIGS)는 매우 큰 광흡수계수를 가지고 있으므로 박막형 태양전지의 광흡수층 재료로서 많은 연구가 진행되고 있다. 박막이 태양전지의 광흡수층으로 이용되기 위해서는 큰 결정크기와 평탄한 표면, 적당한 전기적 특성을 가져야 한다. 이러한 특성들은 CIGS 박막의 조성에 큰 영향을 받고 있는 것으로 보고되고 있다. 본 연구에서는 동시증발법을 이용하여 Cu/(In+Ga) 비를 0.9로 고정한 후 Ga 조성(Ga/(In+Ga)의 비 : 0.32, 0.49, 0.69, 0.8, 1)을 변화시켜 Wide band gap CIGS 박막태양전지를 만들었다. 기판은 soda line glass를 사용하였고 뒷면 전극으로는 Mo를 스퍼터링법으로 증착하였다. 또한 버퍼층으로는 기존에 쓰이고 있는 CdS를 CBD(Chemical Bath Deposition)법으로 층착시켰으며, 윈도우층으로는 i-ZnO/n-ZnO를 스파터링 법으로 층착하였다. 그리고 앞면전극으로는 Al을 E-beam 으로 증착하였다. 분석은 XRD, SEM, QE로 분석하였다. 위 실험에서 얻은 결과로는 Ga/(In+Ga)비가 증가할수록 Cu(In,Ga)Se2 박막은 회절 peak들이 큰 회절각으로 이동하였고, 이것은 Ga 원자와 In 원자의 원자반경의 차이에서 기인된 것으로 사료된다. 또한 Ga 조성이 증가할수록 단파장 쪽으로 이동하는 것을 볼 수 있으며, Voc가 증가하다가 에너지 밴드캡이 1.62 eV 이상에서는 Voc가 감소하는 것을 볼 수 있는데 이것은 Ga 조성이 증가할수록 에너지 밴드캡이 커지면서 defect level 이 존재하기 때문인 것으로 사료된다. Ga/(In+Ga)비가 1일 때의 변환효율은 8.5 %이고, Voc : 0.74 (V), Jsc : 17.2 ($mA/cm^{2}$), F.F : 66.6(%) 이다.

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Electrical and Optical Properties of Cu(InGa)$Se_2$ Thin Films Prepared on Difference Substrates (이종기판에 형성된 Cu(InGa)$Se_2$ 박막의 전기.광학적 특성)

  • Kim, S.K.;Lee, J.C.;Kang, K.H.;Yoon, K.H.;Park, I.J.;Song, J.
    • Proceedings of the KIEE Conference
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    • 2000.07c
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    • pp.1625-1627
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    • 2000
  • Cu(InGa)$Se_2$(CIGS) thin film absorbers with various Cu/(In+Ga) atomic ratios were prepared by a three-stage process using a co-evaporation appartus. The effect of Na on the structural and electrical properties of CIGS films were studied and their effects on the CIGS/Mo thin film solar cells were investigated. Soda-lime glass and Corning glass were used as substrates to compare the effect of Na diffusion into CIGS film. The resistivity of CIGS films was not changed in the Cu-poor lesion due to diffusion of Na from soda-lime glass but was mainly determined by the surface resistivity controlled by excess Na.

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Fabrication and Characteristics of C(IG)(SeS)2 Absorbers by Selenization and Sulfurization

  • Son, Young-Ho;Jung, Myoung-Hyo;Choi, Seung-Hoon;Choi, Jung-Kyu;Kim, Jin-Ha;Lee, Dong-Min;Park, Joong-Jin;Lee, Jang-Hee;Jung, Eui-Chun;Kim, Jung-Hun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.08a
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    • pp.361-361
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    • 2011
  • Cu(InGa)(SeS2) (CIGS) thin film solar cells have recently reached an efficiency of 20%. Recent studies suggest a double graded band gap structure of the CIGS absorber layer to be a key issue in the production of high efficiency thin film solar cell using by sputtering process method. In this study, Cu(InGa)(SeS2) absorbers were manufactured by selenization and surfulization, we have deposited CIG precusor by sputtering and Se layer by evaporation before selenization. The objective of this study is to find out surfulization effects to improve Voc and to compare with non-surfulization Cu(InGa)Se2 absorbers. Even if we didn't analysis Ga depth profile of Cu(InGa)(SeS2) absorbers, we confirmed increasing of Eg and Voc through surlization process. In non-surfulization Cu(InGa)Se2 absorbers, Eg and Voc are 0.96eV and 0.48V. Whereas Eg and Voc of Cu(InGa)(SeS2) absorbers are 1.16eV and 0.57V. And the efficiency of 9.58% was achieved on 0.57cm2 sized SLG substrate. In this study, we will be discussed to improve Eg and Voc through surfulization and the other method without H2S. gas.

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Characteristic of the Sputtered CIGS Films in Relation to Heat Treatment Condition (스퍼터링법으로 제작한 CIGS 박막의 후열처리에 따른 물성 평가)

  • Jung, Jae-Heon;Cho, Sang-Hyun;Song, Pung-Keun
    • Journal of the Korean institute of surface engineering
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    • v.46 no.1
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    • pp.16-21
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    • 2013
  • CIGS (Cu-In-Ga-Se) films were deposited on the Mo coated soda lime glass (Mo/SLG) by RF magnetron sputtering using a single sintered target with different chemical compositions. Heat treatment of the CIGS films were carried out under three different conditions, 1step ($350^{\circ}C$ for 2 hour and $550^{\circ}C$ for 2 hour) and 2step ($350^{\circ}C$ for 1 hour and $550^{\circ}C$ for 1 hour). In the case of CIGS films post-annealed on 2step method, grain size remarkably increased compared to other methods, indicating that chemical composition [Cu/(Ga+In) = 1] of CIGS films was same as CIGS target. After heat treatment by 2step method, band gap energy of the CIGS film deposited at RF 80 W showed 1.4 eV which is broadly similar to identical band gap energy (1.2 eV) of CIGS film prepared by evaporation method. Therefore, 2step heat treatment method could be expected to low temperature process.

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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Low-temperature Growth of Cu(In,Ga)Se2 Thin Film and NaF Post Deposition Treatment for Cu(In,Ga)Se2 Solar Cells (Cu(In,Ga)Se2 박막의 저온 성장 및 NaF 후속처리를 통한 태양전지 셀 특성 연구)

  • Kim, Seung Tae;Jung, Gwang Seon;Yun, Jae Ho;Park, Byong Guk;Ahn, Byung Tae
    • Current Photovoltaic Research
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    • v.3 no.1
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    • pp.21-26
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    • 2015
  • High efficiency $Cu(In,Ga)Se_2$ solar cells are generally prepared above $500^{\circ}C$. Lowering the process temperature can allow wider selection of substrate material and process window. In this paper, the three-stage co-evaporation process widely used to grow CIGS thin film at high temperature was modified to reduce the maximum substrate temperature. Below $400^{\circ}C$ the CIGS films show poor crystal growth and lower solar cell performance, in spite of external Na doping by NaF. As a new approach, Cu source instead of Cu with Se in the second stage was applied on the $(In,Ga)_2Se_3$ precursor at $400^{\circ}C$ and achieved a better crystal growth. The distribution of Ga in the films produce by new method were investigated and solar cells were fabricated using these films.

Band Alignment at CdS/wide-band-gap Cu(In,Ga)Se2 Hetero-junction by using PES/IPES

  • Kong, Sok-Hyun;Kima, Kyung-Hwan
    • Transactions on Electrical and Electronic Materials
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    • v.6 no.5
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    • pp.229-232
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    • 2005
  • Direct characterization of band alignment at chemical bath deposition $(CBD)-CdS/Cu_{0.93}(In_{1-x}Ga_x)Se_2$ has been carried out by photoemission spectroscopy (PES) and inverse photoemission spectroscopy (IPES). Ar ion beam etching at the condition of the low ion kinetic energy of 400 eV yields a removal of surface contamination as well as successful development of intrinsic feature of each layer and the interfaces. Especially interior regions of the wide gap CIGS layers with a band gap of $1.4\~1.6\;eV$ were successfully exposed. IPES spectra revealed that conduction band offset (CBO) at the interface region over the wide gap CIGS of x = 0.60 and 0.75 was negative, where the conduction band minimum of CdS was lower than that of CIGS. It was also observed that an energy spacing between conduction band minimum (CBM) of CdS layer and valance band maximum (VBM) of $Cu_{0.93}(In_{0.25}Ga_{0.75})Se_2$ layer at interface region was no wider than that of the interface over the $Cu_{0.93}(In_{0.60}Ga_{0.40})Se_2$ layer.

Effect of MoSe2 on Contact Resistance of ZnO/Mo Junction in Cu(In,Ga)Se2 Thin Film Solar Module (MoSe2가 Cu(In,Ga)Se2 박막 태양전지 모듈의 ZnO/Mo 접합의 접촉 저항에 미치는 영향)

  • Cho, Sung Wook;Kim, A Hyun;Lee, Gyeong A;Jeon, Chan Wook
    • Current Photovoltaic Research
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    • v.8 no.3
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    • pp.102-106
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    • 2020
  • In this paper, the effect of MoSe2 on the contact resistance (RC) of the transparent conducting oxide (TCO) and Mo junction in the scribed P2 region of the Cu(In,Ga)Se2 (CIGS) solar module was analyzed. The CIGS/Mo junction becomes ohmic-contact by MoSe2, so the formation of the MoSe2 layer is essential. However, the CIGS solar module has a TCO/MoSe2/Mo junction in the P2 region due to structural differences from the cell. The contact resistance (RC) of the P2 region was calculated using the transmission line method, and MoSe2 was confirmed to increase RC of the TCO/Mo junction. B doped ZnO (BZO) was used as TCO, and when BZO/MoSe2 junction was formed, conduction band offset (CBO) of 0.6 eV was generated due to the difference in their electron affinities. It is expected that this CBO acts as a carrier transport barrier that disturbs the flow of current, resulting in increased RC. In order to reduce the RC caused by CBO, MoSe2 must be made thin in a CIGS solar module.

CIGS 박막 반응메카니즘 및 생성공정의 이해

  • Kim, U-Gyeong
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.24-24
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    • 2010
  • Chalcopyrite $Cu(In,Ga)Se_2$ (CIGS) 화합물 반도체는 고효율 박막태양전지의 광 흡수층으로 사용되는 물질 중 가장 우수한 효율 (19.9%, NREL 2008)을 보유하고 있다. CIGS는 직접천이형 에너지밴드갭 (direct bandgap)을 가지고 있고, 광흡수계수가 $1{\times}10^5\;cm^{-1}$로서 반도체 중 서 가장 흡수율이 높은 재료에 속하여 두께 $1{\sim}2\;{\mu}m$의 박막으로도 고효율의 태양전지 제조가 가능하고, 또한 장기적으로 전기광학적 안정성이 매우 우수한 특성을 지니고 있다. 현재 고효율 CIGS 셀생성을 위해 널리 사용되고 있는 CIGS 흡수층 성장공정은 "co-evaporation(동시증발법)"과 2-step 공정이라 불리는 "sputter-selenization(스퍼터-셀렌화)" 방법이다. 동시증발법은 개별원소 Cu, In, Ga, Se 들을 고진공 분위기에서 고온 ($550{\sim}600^{\circ}C$)기판위에 증착하는 방법으로 소면적에서 가장 좋은 효율(~20%)을 보이는 공정이다. 하지만, 고온, 고진공 공정조건과 대면적 증착시 온도 및 조성 불균일 등의 문제점 등으로 상용화에 어려움이 있다. 스퍼터-셀렌화 공정은 1단계에서 스퍼터링 방식으로 CuGaIn 전구체를 증착하고, 2단계에서 고온($550{\sim}600^{\circ}C$)하에 $H_2Se$ 혹은 Se vapor와 반응시켜 CIGS를 생성한다. 일본의 Showa Shell와 Honda Soltec 등에 의해 이미 상업화 되었듯이, 저비용 대면적으로 상업화 가능성이 높은 공정으로 평가되고 있다. 하지만, 2단계에서 사용되는 $H_2Se$ 및 Se vapor의 유독성, 기상 Se과 금속전구체 간의 느린 셀렌화 반응속도, 셀렌화반응 후 생성된 CIGS 박막 두께방향으로의 Ga 불균일분포, 생성된 CIGS/Mo 계면 접착력 저하등의 문제점들이 해결되어야만 상업화에 성공할 수 있을 것이다. 본 Tutorial에서는 CIGS 물질의 열역학 상평형과 반응메카니즘에 대해 설명하고, 다양한 생성 공정들을 소개할 것이다.

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Se Cracker를 이용하여 제작된 Cu(In,Ga)$Se_2 $ 박막 태양전지의 특성

  • Park, Su-Jeong;Jo, Dae-Hyeong;Kim, Ju-Hui;Jo, Yu-Seok;Yun, Jong-Man;Jeong, Yong-Deok
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.08a
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    • pp.427-427
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    • 2012
  • Cu(In,Ga)$Se_2 $ (CIGS) 박막 태양전지는 높은 효율과 낮은 생산 단가로 인해 많은 연구가 이루어지고 있다. 특히, Se flux는 박막의 특성에 가장 중요한 CIGS의 결정성, 결정립 크기, 결정방향을 형성하는데 영향을 주는 것으로 알려져 있다. 일반적인 co-evaporation에 사용되는 Se effusion cell의 경우, 높은 분자가를 가지는 Se 분자들이 공급되기 때문에 낮은 반응성을 보이지만 Se cracker cell을 사용할 경우 Se 분자들이 열적으로 크래킹되어 낮은 분자가를 가지므로 화학적으로 높은 반응성을 가진다. 따라서 적은 양의 Se으로도 양질의 CIGS 박막 제작이 가능하다. 본 연구에서는 Se effusion cell과 cracker cell을 이용하여 CIGS 광흡수층을 제작하였으며, 각각 제작된 CIGS 박막의 특성을 비교하였다. 또한 Se cracker cell의 reservoir zone(R-zone) 온도를 통해 Se flux를 변화시켜 Se flux에 따른 CIGS 박막 태양전지의 특성에 대해 알아보았다. SEM, EDS, XRD 측정을 통해 박막의 특성을 분석하였고, J-V 측정을 통해 태양전지의 특성에 대해 알아보았다. Se cracker를 사용하여 제작된 CIGS 박막의 결정립 크기가 effusion cell로 제작된 박막보다 더 크게 나타났고, Se flux가 증가할수록 결정립의 크기는 증가하였다. Se cracker의 flux가 $0.17{\'{{\AA}}}$/s일 때 반사방지막 없이 13.14%의 효율을 나타내었다.

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