• Title/Summary/Keyword: n-type solar cell

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Effect of Growth Factors in Doping Concentration of MBE Grown GaAs for Tunnel Diode in Multijunction Solar Cell

  • Park, Gwang-Uk;Gang, Seok-Jin;Gwon, Ji-Hye;Kim, Jun-Beom;Yeo, Chan-Il;Lee, Yong-Tak
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.08a
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    • pp.308-309
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    • 2012
  • One of the critical issues in the growth of multijunction solar cell is the formation of a highly doped Esaki interband tunnel diode which interconnects unit cells of different energy band gap. Small electrical and optical losses are the requirements of such tunnel diodes [1]. To satisfy these requirements, tens of nanometer thick gallium arsenide (GaAs) can be a proper candidate due to its high carrier concentration in low energy band gap. To obtain highly doped GaAs in molecular beam epitaxy, the temperatures of Si Knudsen cell (K-cell) for n-type GaAs and Be K-cell for p-type GaAs were controlled during GaAs epitaxial growth, and the growth rate is set to 1.75 A/s. As a result, the doping concentration of p-type and n-type GaAs increased up to $4.7{\times}10^{19}cm^{-3}$ and $6.2{\times}10^{18}cm^{-3}$, respectively. However, the obtained n-type doping concentration is not sufficient to form a properly operating tunnel diode which requires a doping concentration close to $1.0{\times}10^{19}cm^{-3}$ [2]. To enhance the n-type doping concentration, n-doped GaAs samples were grown with a lower growth rate ranging from 0.318 to 1.123 A/s at a Si K-cell temperature of $1,180^{\circ}C$. As shown in Fig. 1, the n-type doping concentration was increased to $7.7{\times}10^{18}cm^{-3}$ when the growth rate was decreased to 0.318 A/s. The p-type doping concentration also increased to $4.1{\times}10^{19}cm^{-3}$ with the decrease of growth rate to 0.318 A/s. Additionally, bulk resistance was also decreased in both the grown samples. However, a transmission line measurement performed on the n-type GaAs sample grown at the rate of 0.318 A/s showed an increased specific contact resistance of $6.62{\times}10^{-4}{\Omega}{\cdot}cm^{-2}$. This high value of contact resistance is not suitable for forming contacts and interfaces. The increased resistance is attributed to the excessively incorporated dopant during low growth rate. Further studies need to be carried out to evaluate the effect of excess dopants on the operation of tunnel diode.

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Study on the pn Junction Device Using the POCl3 Precursor (POCl3를 사용한 pn접합 소자에 관한 연구)

  • Oh, Teresa
    • Journal of the Korean Vacuum Society
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    • v.19 no.5
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    • pp.391-396
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    • 2010
  • The pn junction for solar cell was prepared on p-type Si wafer by the furnace using the $POCl_3$ and oxygen mixed precursor to research the characteristic of interface at pn junction. The sheet resistance was decreased in accordance with the increasing the diffusion process time for n-type doping on p-type Si wafer. The electron affinity at the interface in the pn junction was decreased with increasing the amount of n-type doping and the sheet resistance also decreased. Consequently, the drift current due to the generation of EHP increased because of low potential barrier. The efficiency and fill factor were increased at the solar cell with increasing the diffusion process time.

Application of Novel BSF Metal and Laser Annealing to Silicon Heterojunction Solar Cell

  • Bong, Seong-Jae;Kim, Seon-Bo;An, Si-Hyeon;Park, Hyeong-Sik;Lee, Jun-Sin
    • Proceedings of the Korean Vacuum Society Conference
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    • 2014.02a
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    • pp.491.2-491.2
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    • 2014
  • Generally, silicon heterojunction solar cell has intrinsic and n-type of hydrogenated amorphous silicon (a-Si:H) as passivation layer and BSF layer. In this study, antimony, novel material, deposited on back side of the heterojunction solar cell as passivation and BSF layer to substitute the a-Si:H and the characteristics of the solar cell such electrical properties and optical properties were analyzed. And SIMS analysis was carried out to obtain the depth profile of the BSF layer which was deposited by laser annealing process.

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The effects of TCO/p-layer Interface on Amorphous Silicon Solar Cell (비정질 실리콘 태양전지에서 TCO/p층 계면 특성의 영향)

  • Ji, I.H.;Suh, S.T.;Choi, B.S.;Hong, S.M.
    • Solar Energy
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    • v.8 no.1
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    • pp.68-73
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    • 1988
  • In the glass/TCO/p-i-n a-Si/Al type of amorphous silicon solar cell, the effects on solar cell efficiency and metastability for the various kinds of TCO analyzed by SAM and ESCA, which was used to measure the diffusion profiles of In and Sn and the Fermi energy shifts in the TCO/p interface respectively. Indium which diffused into a-Si p-layer did not have any significant effects on the Fermi level shift of p-layer when the content of $B_2H_6/SiH_4$ in p-layer was at 1 gas%. The cell fabricated on $SnO_2$ turned out to have the best cell photovoltaic characteristics. ITO fabricated by electron beam deposition system, which was shown to have the greatest rate of diffusion of Indium in ITO/p interface produced the worst metastability among the cells tested.

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Recent Development of P-Tunnel Oxide Passivated Contact Solar Cells

  • Yang Zhao;Muhammad Quddamah Khokhar;Hasnain Yousuf;Xinyi Fan;Seungyong Han;Youngkuk Kim;Suresh Kumar Dhungel;Junsin Yi
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.36 no.4
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    • pp.332-340
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    • 2023
  • Crystalline silicon solar cells have attracted great attention for their various advantages, such as the availability of raw materials, high-efficiency potential, and well-established processing sequence. Tunnel oxide passivated contact (TOPCon) solar cells are widely regarded as one of the most prospective candidates for the next generation of high-performance solar cells because an efficiency of 26% has been achieved in small-area solar cells. Compared to n-type TOPCon solar cells, the photo conversion efficiency (PCE) of p-type TOPCon is slightly higher. The highest PCEs of p-type TOPCon and n-type TOPCon solar cells are 26.0% and 25.8%, respectively. Despite the highest efficiency in small-area cells, limited progress has been achieved in p-type TOPCon solar cells for large are due to their lower carrier lifetime and inferior surface passivation with the boron-doped c-Si wafer. Nevertheless, it is of great importance to promoting the p-type TOPCon technology due to its lower price and well-established manufacturing procedures with slight modifications in the PERC solar cells production lines. The progress in different approaches to increase the efficiencies of p-type TOPCon solar cells has been reported in this review article and is expected to set valuable strategies to promote the passivation technology of p-type TOPCon, which could further increase the efficiency of TOPCon solar cells.

Effect of resistivity on characteristics of solar cell in passivated N-type crystalline silicon substrate (패시베이션 처리된 n-형 결정질 실리콘 기판의 비저항에 따른 태양전지 특성 변화)

  • Won, Chi-Hyun;Yi, Jun-Sin
    • 한국신재생에너지학회:학술대회논문집
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    • 2011.11a
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    • pp.65.1-65.1
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    • 2011
  • 결정질 실리콘 웨이퍼의 전면 재결합 속도, 비저항은 태양전지 특성에 영향을 끼치는 중요한 요소이다. 태양전지의 최종목표인 효율에 미치는 영향을 알아보기 위해 패시베이션 처리된 n-형 웨이퍼를 사용한 태양전지에서 웨이퍼의 비저항과 전면 재결합 속도를 조절하였고 그에 따른 변환 효율과 기본 파라미터 값의 변화를 확인하였다. PC1D를 사용하여 시뮬레이션을 수행하였으며 이론적으로 비저항 = $0.06557{\Omega}{\cdot}cm$, 전면 재결합 속도 = 100cm/s에서 18.46%의 효율을 얻을 수 있었다.

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A study on the $ALU^+$ crystalline solar cell characteristics affected by counts of rear side screen printings ($ALU^+$를 이용한 결정질 태양전지 후면 전극 Screen Printing 횟수에 따른 특성)

  • Choi, Jaewoo;Kim, Hyunyup;Yi, Junsin
    • 한국신재생에너지학회:학술대회논문집
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    • 2011.05a
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    • pp.123.1-123.1
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    • 2011
  • 기존의 p-type 태양전지 공정과 유사한 공정으로 제작되는 n-type $ALU^+$태양전지는 후면에 Al을 screen printing하여 emitter층을 형성한 구조이다. screen printing은 공정의 단순화와 제조 단가의 저비용으로 인해, metalization 공정에서 많이 쓰이고 있다. 본 연구에서는 양산 가능한 n-type $ALU^+$태양전지 제작을 위해, 후면 Al emitter 층을 single, dobule, triple로 변경하며 Al의 양을 가변하였고, 그에 따른 특성의 변화를 연구하였다. screen printing 횟수가 변경된 후면 Al emitter 층의 특성은 DIV와 LIV 측정을 통해 분석하였다. 실험 결과 Al을 single printing 하였을 때보다, double, triple printing을 통하여 Al의 양을 증가하였을 때, DIV 데이터에서 직렬저항(Rs)가 $24.44{\Omega}/cm^2$에서 $0.31{\Omega}/cm^2$으로 감소하였고, 단락전류(Jsc)는 1.26mA/$cm^2$에서 37.7mA/$cm^2$으로 약 300% 증가한 것을 확인할 수 있었다. 프린팅 횟수에 따른 LIV 데이터의 Fill Factor를 분석하게 되면, double printing이 64.35%로 54.75%의 triple printing보다 약 1.17배 더 향상된 것으로 확인하였다. 이러한 결과를 바탕으로 후면 Al emitter 형성시에 Al의 양이 적절하지 못한 이유로, Al emitter가 제대로 형성되지 못하거나 과하게 형성되면, 태양전지 내부에 누설 저항의 변화와 누설 전류의 증가로 인해, 단락전류(Jsc)와 Fill Factor 감소의 주요 원인이 된다는 것을 확인할 수 있었다.

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A Study on the Experimental Fabrication and Analysis of MOS Photovoltaic Solar Energy Conversion Device (MOS 광전변화소자의 식적에 관한 연구)

  • Ko, Gi-Man;Park, Sung-Hui;Sung, Man-Young
    • The Transactions of the Korean Institute of Electrical Engineers
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    • v.33 no.6
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    • pp.203-211
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    • 1984
  • MOS silicon solar cells have been developed using the fixed (interface) charge inherent to thermally oxidized silicon to induce an n-type inversion layer in 1-10 ohm-cm p-type silicon. Higher collection efficiencies are predicted than for diffused junction cells. Without special precautions a conversion efficiency of 14.2% is obtained. A MOS silicon solar cell is described in which an inversion layer forms the active area which is then contacted by means of a MOS grid. The highest efficiency is obtained when the resistivity of the substrate is high.

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Interlayers of polymer tandem solar cells

  • Kim, Tae-Hui;Kim, Gyeong-Gon
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.318-318
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    • 2010
  • We present the effect of interlayers of polymer tandem solar cells on their photovoltaic performance. P-type and n-type interlayers are essential for the series-connection of the subcells and enable to form the tandem cell architecture by the solution processing. In this study, we use PEDOT:PSS, nanocrystalline $TiO_2$, and blends of semiconducting polymers and fullerene derivatives as a hole transporting layer, electron transporting layer, and photoactive layers, respectively. We show that photovoltaic performances of polymer tandem solar cells depending on various PEDOT:PSS layers with the different electric conductivity and the various $TiO_2$ layer thickness.

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Efficiency Improvement with $Al_2O_3/SiN_x$ Rear Passivation of p-type Mono-crystalline Silicon Solar Cells ($Al_2O_3/SiN_x$ 후면 적층 패시베이션을 이용한 결정질 실리콘 태양전지의 효율 향상 연구)

  • Cheon, Joo Yong;Beak, Sin Hey;Kim, In Seob;Chun, Hui Gon
    • Journal of the Semiconductor & Display Technology
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    • v.12 no.3
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    • pp.47-51
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    • 2013
  • Current research trends of solar cells has focused on the high conversion efficiency and low-cost production technology. Passivation technology that can be easily adapted to mass production. Therefore, this study conducted experiments with aim of the following two methods for the fabrication of high-efficiency crystalline silicon solar cells. In the first task, an attempt is formation of local Al-BSF to a number of locally doped dots to increase the conversion efficiency of solar cells to reduce the loss of $V_{oc}$ overcome. The second major task, rear surface apply in $Al_2O_3/SiN_x$ stack layer, $Al_2O_3$ prominent negative fixed charge characteristics. As the result of task, Local Al-BSF and $Al_2O_3/SiN_x$ stack layer applied to the p-type single crystalline silicon solar cells, the average $V_{oc}$ of 644mV, $I_{sc}$ of 918mV and conversion efficiency of 18.70% were obtained.