• 제목/요약/키워드: Se Deposition

검색결과 478건 처리시간 0.029초

Se Incorporation in VTD-SnS by RTA and Its Influence on Performance of Thin Film Solar Cells

  • Yadav, Rahul Kumar;Kim, Yong Tae;Pawar, Pravin S.;Heo, Jaeyeong
    • Current Photovoltaic Research
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    • 제10권2호
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    • pp.33-38
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    • 2022
  • Planner configuration thin film solar cells (TFSCs) with SnS/CdS heterojunction performed a lower short-circuit current (JSC). In this study, we have demonstrated a path to overcome deficiency in JSC by the incorporation of Se in the SnS absorber. We carried out the incorporation of Se in VTD grown SnS absorber by rapid thermal annealing (RTA). The diffusion of Se is mostly governed by RTA temperature (TRTA), also it is observed that film structure changes from cube-like to plate-like structure with TRTA. The maximum JSC of 23.1 mA cm-2 was observed for 400℃ with an open-circuit voltage (VOC) of 0.140 V for the same temperature. The highest performance of 2.21% with JSC of 18.6 mA cm-2, VOC of 0.290 V, and fill factor (FF) of 40.9% is observed for a TRTA of 300℃. In the end, we compare the device performance of Se- incorporated SnS absorber with pristine SnS absorber material, increment in JSC is approximately 80% while a loss in VOC of about 20% has been observed.

Carbon Nanotube Passivation layer for Increasing the Solar Water Splitting Performance of CdS/CuInGaSe Photocathode

  • Bae, Hyojung;Ko, Young-Hee;Park, Jun-Beom;Ko, Hang-Ju;Ryu, Sang-Wan;Ha, Jun-Seok
    • 마이크로전자및패키징학회지
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    • 제26권4호
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    • pp.107-111
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    • 2019
  • We report the fabrication of a CdS/CuInGaSe (CdS/CIGS) structure with carbon nanotubes and its application as a photocathode for photoelectrochemical water splitting. CIGS thin films were fabricated using co-evaporation by RF magnetron sputtering, while CdS was fabricated by chemical bath deposition. Spray coated multi-wall carbon nanotube (CNT) film on CdS/CIGS thin film was investigated as a photocathode. The CNT-coated CdS/CIGS showed superior photocurrent density and exhibited improved photostability.

메조포러스 이산화티타늄 박막 기반 양자점-감응 태양전지 (Quantum Dot-Sensitized Solar Cells Based on Mesoporous TiO2 Thin Films)

  • 이효중
    • 전기화학회지
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    • 제18권1호
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    • pp.38-44
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    • 2015
  • 본 총설은 다공성의 메조포러스 이산화티타늄 박막을 기반으로 하는 양자점-감응 태양 전지의 최근 발전 과정에 대해 정리하였다. 나노스케일의 무기물 양자점이 가지는 본질적 특성에 기반하고 다양한 양자점 구성 물질을 이용하여, 용액-공정 기반의 다양한 3세대 박막 태양전지를 만들 수 있었다. 양자점 감응제는 준비하는 방법에 따라 크게 2가지로 나눌 수 있는데, 첫 번째는 콜로이드 형태로 용액상에서 준비한 다음 $TiO_2$ 표면에 붙이는 것이고 두 번째는 양자점 전구체가 녹아있는 화학조를 이용하여 직접 $TiO_2$ 표면에 성장시키는 것이다. 폴리썰파이드 전해질을 사용하여, 콜로이드 양자점 감응제의 경우는 최근 들어 정밀한 조성 조절을 통하여 전체 광전 변환효율이 ~7%에 이르렀고 화학조 침전법을 이용하여 준비된 대표적 감응제인 CdS/CdSe는 ~5%의 효율을 보이고 있다. 앞으로는 지금까지 보고된 양자점 감응제의 뛰어난 광전류 생성 능력을 유지하면서, 새로운 정공 전달체의 개발 및 계면 조절을 통한 개방 전압과 채움 상수의 개선을 통한 효율 증가 및 안정성에 관한 체계적 연구가 필요한 상황이다.

ALD를 이용한 ZnO 기반 박막물질의 광전소자로의 응용 (Application of ZnO-based ALD processes for photovoltaic devices)

  • 이우재;윤은영;권정대;권세훈
    • 한국표면공학회:학술대회논문집
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    • 한국표면공학회 2015년도 춘계학술대회 논문집
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    • pp.47-47
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    • 2015
  • Atomic layer deposition (ALD) 방법으로 증착시킨 ZnO 기반의 박막물질들을 다양한 종류의 태양전지에서 TCO, Buffer Layer 등으로 활용하기 위한 노력이 최근 이루어지고 있다. 본 발표에서는 ALD를 이용한 ZnO 기반 박막물질들의 광전소자로의 적용을 위한 요구물성을 맞추기 위한 precursor/reactant의 selection을 포함한 공정 parameter가 박막의 물성에 미치는 영향 및 생산성 향상을 위한 ALD 공정장치 개발 예를 소개하고, 광전소자 특성에 미치는 영향을 살펴보았다.

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결정질 실리콘 태양전지를 위한 PA-ALD Al2O3 막의 패시베이션 효과 향상 연구 (Improvement on the Passivation Effect of PA-ALD Al2O3 Layer Deposited by PA-ALD in Crystalline Silicon Solar Cells)

  • 송세영;강민구;송희은;장효식
    • 한국전기전자재료학회논문지
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    • 제26권10호
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    • pp.754-759
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    • 2013
  • Aluminum oxide($Al_2O_3$) film deposited by atomic layer deposition (ALD) is known to supply excellent surface passivation properties on crystalline Si surfaces. Since $Al_2O_3$ has fixed negative charge, it forms effective surface passivation by field effect passivation on the rear side in p-type silicon solar cell. However, $Al_2O_3$ layer formed by ALD process needs very long process time, which is not applicable in mass production of silicon solar cells. In this paper, plasma-assisted ALD(PA-ALD) was applied to form $Al_2O_3$ to reduce the process time. $Al_2O_3$ synthesized by ALD on c-Si (100) wafers contains a very thin interfacial $SiO_2$ layer, which was confirmed by FTIR and TEM. To improve passivation quality of $Al_2O_3$ layer, the deposition temperature was changed in range of $150{\sim}350^{\circ}C$, then the annealing temperature and time were varied. As a result, the silicon wafer with aluminum oxide film formed in $250^{\circ}C$, $400^{\circ}C$ and 10 min for the deposition temperature, the annealing temperature and time, respectively, showed the best lifetime of 1.6ms. We also observed blistering with nanometer size during firing of $Al_2O_3$ deposited on p-type silicon.

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.