Fabrication and Characterization of Al-BSF Bifacial Solar Cell

被引:0
|
作者
Sepeai, Suhaila [1 ]
Cheow, S. L. [1 ]
Sulaiman, M. Y. [1 ]
Sopian, K. [1 ]
Zaidi, Saleem H. [1 ]
机构
[1] Univ Kebangsaan Malaysia, Solar Energy Res Inst, Bangi 43600, Selangor, Malaysia
来源
2013 IEEE 39TH PHOTOVOLTAIC SPECIALISTS CONFERENCE (PVSC) | 2013年
关键词
Silicon solar cell; Bifacial solar cell; Al-BSF; POCl3; diffusion; Surface photovoltage;
D O I
暂无
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Crystalline silicon, in its single crystalline or multi-crystalline (mc) format, dominates the photovoltaic (PV) industry. However, PV energy generation cost is still higher than energy-conversion costs of carbon-based fossil fuels. Since the price of silicon wafer accounts for almost 50 % of the energy conversion cost, historically cost reduction through reducing Si wafer thickness has been successful approach. This approach is now reaching its limits due to yield reduction of thinner wafers, thermal expansion mismatch between Al and thin Si wafer, and reduced optical absorption. In recent years, bifacial solar cells have attracted attention due to their several attractive features including: (a) applicability to thinner wafers, (b) superior high temperature performance, (c) elimination of wafer warpage, (d) lower metal usage, (e) symmetric structure irrespective of n or p wafer, (f) enhanced power generation, and (g) simple processing. A bifacial solar cell structure consists of bulk (p or n-type semiconductor), emitter, back surface field (BSF), anti reflective coatings (ARC) and identical metal grids on both sides. In this study, a new combination method of emitter and BSF layer for npp(+) bifacial structure has been investigated. The npp+ structure has been chosen due to its inherent simplicity and process similarity to industrial monofacial solar cell manufacturing. The new process relies on POCl3 diffusion for emitter formation on the front side; and screen printed Aluminum (Al) for BSF on the rear surface. A screen-printed process is used to apply Al to the wafer followed by high temperature firing process to form Al back surface field and contact. In this case, excess Al is removed from the rear using wet-chemical etching resulting in an Al-doped p(+) surface. LIV, surface photovoltage, and EDAX techniques were employed to characterized solar cell performance; PC1D simulations were applied to determine front and rear surface efficiencies. Poor rear surface performance of such bifacial solar cells has been attributed to inadequate passivation, higher reflection, and ineffective back surface field.
引用
收藏
页码:2664 / 2668
页数:5
相关论文
共 50 条
  • [21] Initial Stability of PERC vs. Al-BSF Cells
    Braid, Jennifer L.
    Wager, Trey D.
    Longacre, Alexandra
    Huey, Bryan D.
    French, Roger H.
    2018 IEEE 7TH WORLD CONFERENCE ON PHOTOVOLTAIC ENERGY CONVERSION (WCPEC) (A JOINT CONFERENCE OF 45TH IEEE PVSC, 28TH PVSEC & 34TH EU PVSEC), 2018, : 1255 - 1260
  • [22] Reduced Module Operating Temperature and Increased Yield of Modules With PERC Instead of Al-BSF Solar Cells
    Vogt, Malte Ruben
    Schulte-Huxel, Henning
    Offer, Matthias
    Blankemeyer, Susanne
    Witteck, Robert
    Koentges, Marc
    Bothe, Karsten
    Brendel, Rolf
    IEEE JOURNAL OF PHOTOVOLTAICS, 2017, 7 (01): : 44 - 50
  • [23] Optimization of Laser Fired Contact Process for the Formation of an Al-BSF Layer
    Park, Jeong Eun
    Choi, Won Seok
    Lim, Donggun
    APPLIED SCIENCES-BASEL, 2021, 11 (06):
  • [24] Evolution of PERC from Al-BSF: optimization based on root cause analysis
    Nabin Chandra Mandal
    Shiladitya Acharya
    Susmita Biswas
    Tamalika Panda
    Sourav Sadhukhan
    Jayasree Roy Sharma
    Sukanta Bose
    Gourab Das
    Arindam Kole
    Anupam Nandi
    Santanu Maity
    Partha Chaudhuri
    Hiranmay Saha
    Subhendu Guha
    Applied Physics A, 2020, 126
  • [25] Investigation of RTP and belt fired screen printed Al-BSF on textured and planar back surfaces of silicon solar cells
    Meemongkolkiat, V
    Hilali, M
    Rohatgi, A
    PROCEEDINGS OF 3RD WORLD CONFERENCE ON PHOTOVOLTAIC ENERGY CONVERSION, VOLS A-C, 2003, : 1467 - 1470
  • [26] Evolution of PERC from Al-BSF: optimization based on root cause analysis
    Mandal, Nabin Chandra
    Acharya, Shiladitya
    Biswas, Susmita
    Panda, Tamalika
    Sadhukhan, Sourav
    Sharma, Jayasree Roy
    Bose, Sukanta
    Das, Gourab
    Kole, Arindam
    Nandi, Anupam
    Maity, Santanu
    Chaudhuri, Partha
    Saha, Hiranmay
    Guha, Subhendu
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2020, 126 (07):
  • [27] Comparison of LID and Electrical Injection Regeneration of PERC and Al-BSF Solar Cells from a Cz-Si Ingot
    Ding, Siqi
    Yang, Chen
    Qin, Cheng
    Ai, Bin
    Sun, Xiaopu
    Yang, Jianghai
    Liu, Quan
    Liang, Xueqin
    ENERGIES, 2022, 15 (20)
  • [28] Investigation of RTP and belt fired screen printed AL-BSF on textured and planar back surfaces of silicon solar cells
    Meemongkolkiat, V., World Conference on Photovoltaic Energy Conference,WCPEC (World Conference on Photovoltaic Energy Conference (WCPEC)):
  • [29] Enhanced energy conversion efficiency of Al-BSF c-Si solar cell by a novel hierarchical structure composed of inverted pyramids with different sizes
    Tang, Quntao
    Yao, Hanyu
    Xu, Binbin
    Ge, Jiawei
    SOLAR ENERGY, 2020, 208 : 1 - 9
  • [30] Efficiency Gain For Bi-Facial Multi-Crystalline Solar Cell With Uncapped Al2O3 And Local Firing-Through Al-BSF
    Cesar, Ilkay
    Manshanden, Petra
    Janssen, Gaby
    Granneman, Ernst
    Siarheyeva, Olga
    Weeber, Arthur W.
    2013 IEEE 39TH PHOTOVOLTAIC SPECIALISTS CONFERENCE (PVSC), 2013, : 1212 - 1217