High-efficiency c-Si based interdigitated point contact back heterojunction solar cells

被引:0
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作者
R. Jeyakumar
T. K. Maiti
Mahmoud M. Khader
Nikesh Kandasamy
Amit Verma
Reza Nekovei
J. Kumar
Nagarajan Balaji
Junsin Yi
机构
[1] Physics of Energy Harvesting Division,CSIR
[2] McMaster University,National Physical Laboratory
[3] Qatar University,Department of Engineering Physics
[4] Rajalakshmi Engineering College (Anna University),Gas Processing Center, College of Engineering
[5] Texas A&M University – Kingsville,Department of Electrical and Electronics Engineering
[6] Anna University,Department of Electrical Engineering
[7] Sungkyunkwan University,Crystal Growth Centre
[8] Sungkyunkwan University,Department of Energy Science
[9] Texas A&M University – Kingsville,School of Information and Communication Engineering
[10] Hiroshima University,Affiliate Faculty in the Department of Electrical Engineering
关键词
Solar Cell; Minority Carrier; Rear Side; Heterojunction Solar Cell; Back Surface Field;
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学科分类号
摘要
We report on the modeling and performance optimization studies of point contact back heterojunction (BHJ) solar cells. BHJ solar cell technology is a combination of front heterojunction (a-Si:H/c-Si) solar cell technology and interdigitated back junction c-Si solar cell technology. In this work, both emitter (p+-a-Si:H) and back surface field (BSF, n+-a-Si:H) were formed at the rear side as an array of interdigitated points, where their respective contacts formed an interdigitated pattern. The gap between p-type and n-type contact fingers was fixed at 10 µm. The n+-a-Si:H (i.e. BSF) circular diameter was fixed while emitter size was varied, and vice versa. Simulation was also performed with and without passivation layer underneath emitter and BSF. We also investigated the impact of surface texture size on cell efficiency. By varying surface texture size, viz. pyramid height and base width, an efficiency as high as 26.61% was obtained with 761 mV Voc, 41 mA/cm2 Jsc, and 84.5% FF for a small pyramid structure with 2 µm height and 4 µm base width.
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页码:9697 / 9703
页数:6
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