• 제목/요약/키워드: Surface recombination current

검색결과 56건 처리시간 0.026초

Simulation on Optimum Doping Levels in Si Solar Cells

  • Choe, Kwang Su
    • 한국재료학회지
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    • 제30권10호
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    • pp.509-514
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    • 2020
  • The two key variables of an Si solar cell, i.e., emitter (n-type window layer) and base (p-type substrate) doping levels or concentrations, are studied using Medici, a 2-dimensional semiconductor device simulation tool. The substrate is p-type and 150 ㎛ thick, the pn junction is 2 ㎛ from the front surface, and the cell is lit on the front surface. The doping concentration ranges from 1 × 1010 cm-3 to 1 × 1020 cm-3 for both emitter and base, resulting in a matrix of 11 by 11 or a total of 121 data points. With respect to increasing donor concentration (Nd) in the emitter, the open-circuit voltage (Voc) is little affected throughout, and the short-circuit current (Isc) is affected only at a very high levels of Nd, exceeding 1 × 1019 cm-3, dropping abruptly by about 12%, i.e., from Isc = 6.05 × 10-9 A·㎛-1, at Nd = 1 × 1019 cm-3 to Isc = 5.35 × 10-9 A·㎛-1 at Nd = 1 × 1020 cm-3, likely due to minority-carrier, or hole, recombination at the very high doping level. With respect to increasing acceptor concentration (Na) in the base, Isc is little affected throughout, but Voc increases steadily, i.e, from Voc = 0.29 V at Na = 1 × 1012 cm-3 to 0.69 V at Na = 1 × 1018 cm-3. On average, with an order increase in Na, Voc increases by about 0.07 V, likely due to narrowing of the depletion layer and lowering of the carrier recombination at the pn junction. At the maximum output power (Pmax), a peak value of 3.25 × 10-2 W·cm-2 or 32.5 mW·cm-2 is observed at the doping combination of Nd = 1 × 1019 cm-3, a level at which Si is degenerate (being metal-like), and Na = 1 × 1017 cm-3, and minimum values of near zero are observed at very low levels of Nd ≤ 1 × 1013 cm-3. This wide variation in Pmax, even within a given kind of solar cell, indicates that selecting an optimal combination of donor and acceptor doping concentrations is likely most important in solar cell engineering.

HgCdTe 이종접합 광다이오드의 수치 해석 (Numerical analysis of HgCdTe heterojunction photodiodes)

  • 조남홍;곽규달
    • 전자공학회논문지D
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    • 제34D권7호
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    • pp.45-55
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    • 1997
  • Electircal characteristics of HgCdTe photodiodes with a heterostructure to achieve high performance are analyzed numerically. A two-dimensional device simulator which can handle a HgCdTe heterostructure, was developed for this work. The effects of band nonparabolicity, carrier degeneracy, and band-offset of heterointerace are included in a carrier transport model. A unified generation-recombination model includes simultaneously phonon-assisted tunneling and pure tunneling of carriers via traps is newly employed for describing the electric field and temperature dependency of dark current effectively. Furthermore, to accurately predict the effect mole fraction variations on genration rates, ray-trace algorithm is incorporated in the our simulator. Under the various circumstances such as dark, illumination, and surface states, electrical properties of planar heterostructure photodiode are presented and those of homojunction are compared. These results serve as a explanation of cap layer's role on performance.

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PEDOT:PSS Thin Films with Different Pattern Structures Prepared Using Colloidal Template

  • Yu, Jung-Hoon;Lee, Jin-Su;Nam, Sang-Hun;Boo, Jin-Hyo
    • Applied Science and Convergence Technology
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    • 제23권5호
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    • pp.254-260
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    • 2014
  • Organic solar cells have attracted extensive attention as a promising approach for cost-effective photovoltaic devices. However, organic solar cell has disadvantage of low power conversion efficiency in comparison with other type of solar cell, due to the recombination ratio of hole and electron is too large in the active layer. Thus we have change the surface structure of PEDOT:PSS layers to improve the current density by colloidal lithography method using various-size of polystyrene sphere. The two types of coating method were applied to fabricate the different pattern shape and height, such as spin coating and drop casting. Using the organic solvent, we easily eliminate the PS sphere and could make the varied pattern shapes by controlling the wet etching time. Also we have measured the electrical properties of patterned PEDOT:PSS film to check whether it is suitable for organic photovoltaics.

Characterization of EFG Si Solar Cells

  • 박세훈
    • 센서학회지
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    • 제5권5호
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    • pp.1-10
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    • 1996
  • EFG Si 태양전지를 전류-전압, 표면광전압, 전자빔유도_전류, 전자미세프로브, 전자역산란의 여러 가지 기술을 이용하여 분석하였다. 전류-전압 그래프를 여러 온도에서 측정한 결과 EFG-Si 태양전지는 전압에 따라 변하는 shunt 저항을 가진 것이 밝혀졌다. 이러한 shunt 저항은 precipitate와 grain boundary에 의해 생긴 것으로 공간전하영역 내의 불순물 에너지 준위로 tunneling에 의해 이동한 캐리어의 재결합으로 일어난 결과이다. 전류-전압 과 표면광전압 기술을 결합하면 태양전지의 pn접합과 기판 (substrate)을 동시에 분석할 수 있다. Diode ideality factor와 표면 광전압은 Pn접합의 특성을, 소수캐리어 확산거리는 substrate특성을 표시한다. EFG 태양 전지를 분석한 결과, 전압에 따라 변하는 shunt 저항은 효율에 따라 정도 차이는 있지만 모든 시편에서 발견되며, 태양전지의 성능을 저하시키는 중요한 원인 중의 하나가 된다.

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Depth-dependent EBIC microscopy of radial-junction Si micropillar arrays

  • Kaden M. Powell;Heayoung P. Yoon
    • Applied Microscopy
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    • 제50권
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    • pp.17.1-17.9
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    • 2020
  • Recent advances in fabrication have enabled radial-junction architectures for cost-effective and high-performance optoelectronic devices. Unlike a planar PN junction, a radial-junction geometry maximizes the optical interaction in the three-dimensional (3D) structures, while effectively extracting the generated carriers via the conformal PN junction. In this paper, we report characterizations of radial PN junctions that consist of p-type Si micropillars created by deep reactive-ion etching (DRIE) and an n-type layer formed by phosphorus gas diffusion. We use electron-beam induced current (EBIC) microscopy to access the 3D junction profile from the sidewall of the pillars. Our EBIC images reveal uniform PN junctions conformally constructed on the 3D pillar array. Based on Monte-Carlo simulations and EBIC modeling, we estimate local carrier separation/collection efficiency that reflects the quality of the PN junction. We find the EBIC efficiency of the pillar array increases with the incident electron beam energy, consistent with the EBIC behaviors observed in a high-quality planar PN junction. The magnitude of the EBIC efficiency of our pillar array is about 70% at 10 kV, slightly lower than that of the planar device (≈ 81%). We suggest that this reduction could be attributed to the unpassivated pillar surface and the unintended recombination centers in the pillar cores introduced during the DRIE processes. Our results support that the depth-dependent EBIC approach is ideally suitable for evaluating PN junctions formed on micro/nanostructured semiconductors with various geometry.

Surface Modification of TiO2 Nanoparticles with Phenyltrimethoxysilane in Dye-sensitized Solar Cells

  • Chan, Yong-June;Kum, Byung-Gon;Park, Yoon-Cheol;Kong, Eui-Hyun;Jang, Hyun Myung
    • Bulletin of the Korean Chemical Society
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    • 제35권2호
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    • pp.415-418
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    • 2014
  • Phenyltrimethoxysilane (PTMS) was anchored onto the sensitized $TiO_2$ nanoparticles. This insulating molecular layer effectively inhibited the charge recombination at the interface of $TiO_2$/electrolyte in the dye-sensitized solar cells (DSCs) without sacrificing the dye-loading capacity of the nanocrystalline $TiO_2$. DSCs using PTMS-modified $TiO_2$ exhibited a short-circuit current ($J_{SC}$) of $15.9mA/cm^2$, an open-circuit voltage ($V_{OC}$) of 789 mV, and a fill factor (FF) of 68.2%, yielding an overall conversion efficiency (${\eta}$) of 8.55% under $100mW/cm^2$ illumination. The resulting cell efficiency was improved by ~10% as compared with the reference cell.

염료감응형 태양전지 투명전도성 막의 표면처리를 통한 계면 접촉 향상 및 재결합 방지 연구 (A Study on the Improvement of the Interface Contact and the Prevention of the Charge Recombination by the Surface Treatment of Transparent Conductive Oxide in Dye-sensitized Solar Cell)

  • 서현웅;홍지태;손민규;김진경;신인영;김희제
    • 전기학회논문지
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    • 제58권11호
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    • pp.2214-2218
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    • 2009
  • Dye-sensitized solar cell (DSC) has been considered as a possible alternative to current silicon based p-n junction photovoltaic devices due to its advantages of high efficiency, simple fabrication process and low production cost. Numerous researches for high efficient DSC in the various fields are under way even now. Among them, the compact layer, which prevents the back electron transfer between transparent conductive oxides and the redox electrolyte, is fabricated by various methods such as a ZnO dip-coating, $TiCl_4$ dip-coating, and Ti sputtering. In this study, we tried to fabricate the $TiO_2$ compact layer by the spin-coating method using aqueous $TiCl_4$ solution. The effect of the spin-coating method was checked as compared with conventional dip-coating method. As a result, DSC with a spin-coated compact layer had 33.4% and 6% better efficiency than standard DSC and DSC with a dip-coated compact layer.

그라파이트 기판을 이용한 유연 박막 실리콘 태양전지 특성 향상 (Performance Improvement of Flexible Thin Film Si Solar Cells using Graphite Substrate)

  • 임경열;조준식;장효식
    • 한국재료학회지
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    • 제29권5호
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    • pp.317-321
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    • 2019
  • We investigated the characteristics of nano crystalline silicon(nc-Si) thin-film solar cells on graphite substrates. Amorphous silicon(a-Si) thin-film solar cells on graphite plates show low conversion efficiency due to high surface roughness, and many recombination by dangling bonds. In previous studies, we deposited barrier films by plasma enhanced chemical vapor deposition(PECVD) on graphite plate to reduce surface roughness and achieved ~7.8 % cell efficiency. In this study, we fabricated nc-Si thin film solar cell on graphite in order to increase the efficiency of solar cells. We achieved 8.45 % efficiency on graphite plate and applied this to nc-Si on graphite sheet for flexible solar cell applications. The characterization of the cell is performed with external quantum efficiency(EQE) and current density-voltage measurements(J-V). As a result, we obtain ~8.42 % cell efficiency in a flexible solar cell fabricated on a graphite sheet, which performance is similar to that of cells fabricated on graphite plates.

저가 지상전력을 위한 다결정 실리콘 태양전지 제작 (The Fabrication of Poly-Si Solar Cells for Low Cost Power Utillity)

  • 김상수;임동건;심경석;이재형;김홍우;이준신
    • 태양에너지
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    • 제17권4호
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    • pp.3-11
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    • 1997
  • 다결정 실리콘에서 결정입계는 광생성된 반송자들의 재결합 중심으로 작용할 뿐 아니라 전위장벽으로 작용하여 태양전지의 변환효율을 감소시킨다. 결정입계의 영향을 줄이기 위해 열처리, 결정입계에 대한 선택적 식각, 결정입계로 함몰전극을 형성하는 방법, 다양한 전극 구조, 초박막 금속 형성 후 전극형성 등 여러가지 요소들을 조사하였다. 질소 분위기에서 $900^{\circ}C$ 전열처리, $POCl_3$ 확산을 통한 게터링, 후면전계 형성을 위한 Al 처리로 다결정 실리콘의 결함밀도를 감소시켰다. 결정입계에서의 반송자 손실을 감소시키기 위한 기판 처리로 Schimmel 식각액을 사용하였다. 이는 texturing 효과와 함께 결정입계를 선택적으로 $10{\mu}m$ 깊이로 식각하였다. 결점입계를 우선적으로 식각한 후면으로 Al을 확산하여 후면에서의 재결합 손실을 감소시켰다. 전극 핑거(grid finger) 간격이 0.4mm인 세밀한 전극 구조에 결정입계로 $0.4{\mu}m$ 깊이로 함몰전극을 추가로 형성하여 태양전지의 단락 전류 밀도가 개선되었다. 80% 이상의 광투과율을 보인 20nm 두께의 크롬 박막 형성으로 직렬 저항을 감소시켰다. 본 논문은 저가의 고효율, 지상 전력용 태양진지를 위해 결정입계에 대한 연구를 하였다.

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Aluminum 및 Aluminum-Boron후면 전극에 따른 단결정 실리콘 태양전지 특성 (Characteristics of Mono Crystalline Silicon Solar Cell for Rear Electrode with Aluminum and Aluminum-Boron)

  • 홍지화;백태현;김진국;최성진;김남수;강기환;유권종;송희은
    • 한국태양에너지학회:학술대회논문집
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    • 한국태양에너지학회 2011년도 추계학술발표대회 논문집
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    • pp.34-39
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    • 2011
  • Screen printing method is a common way to fabricate the crystalline silicon solar cell with low-cost and high-efficiency. The screen printing metallization use silver paste and aluminum paste for front and rear contact, respectively. Especially the rear contact between aluminum and silicon is important to form the back surface filed (Al-BSF) after firing process. BSF plays an important role to reduces the surface recombination due to $p^+$ doping of back surface. However, Al electrode on back surface leads to bow occurring by differences in coefficient of thermal expansion of the aluminum and silicon. In this paper, we studied the properties of mono crystalline silicon solar cell for rear electrode with aluminum and aluminum-boron in order to characterize bow and BSF of each paste. The 156*156 $m^2$ p-type silicon wafers with $200{\mu}m$ thickness and 0.5-3 ${\Omega}\;cm$ resistivity were used after texturing, diffusion, and antireflection coating. The characteristics of solar cells was obtained by measuring vernier callipers, scanning electron microscope and light current-voltage. Solar cells with aluminum paste on the back surface were achieved with $V_{OC}$ = 0.618V, JSC = 35.49$mA/cm^2$, FF(Fill factor) = 78%, Efficiency = 17.13%.

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