Cadmium Telluride Solar Cells on Ultrathin Glass for Space Applications

被引:0
作者
S.J.C. Irvine
D.A. Lamb
A.J. Clayton
G. Kartopu
V. Barrioz
机构
[1] CSER,
[2] Glyndŵr University,undefined
[3] OpTIC,undefined
来源
Journal of Electronic Materials | 2014年 / 43卷
关键词
Photovoltaic; flexible solar cells; cadmium telluride; space applications;
D O I
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中图分类号
学科分类号
摘要
This paper details the preliminary findings of a study to achieve a durable thin-film CdTe photovoltaic (PV) device structure on ultrathin space-qualified cover glass. An aluminum-doped zinc oxide (AZO) transparent conducting oxide was deposited directly onto the cover glass using metalorganic chemical vapor deposition (MOCVD). The AZO demonstrated low sheet resistance of 10 Ω/□ and high optical transparency of 85% as well as excellent adherence and environmental stability. Preliminary deposition of PV layers onto the AZO on cover glass, by MOCVD, showed the possibility of such a structure, yielding a device conversion efficiency of 7.2%. High series resistance (10 Ω cm2) and low Voc (586 mV) were identified as the limiting factors when compared with the authors’ platform process on indium tin oxide-coated aluminosilicate. The coverage of the Cd1−xZnxS window layer along with the front contacting of the device were shown to be the major causes of the low efficiency. Further deposition of AZO/CdTe employing an oxygen plasma cleaning step to the cover glass and evaporated gold front contacts significantly improved the device performance. With a highest conversion efficiency of 10.2%, series resistance improved to 4.4 Ω cm2, open-circuit voltage (Voc) up to 667 mV, and good adhesion, this represents the first demonstration of direct deposition of CdTe solar cells onto 100-μm-thick space-qualified cover glass.
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页码:2818 / 2823
页数:5
相关论文
共 61 条
[1]  
Cotal H(2009)Solar cell efficiency tables (v. 42) Energy Environ. Sci. 2 174-850
[2]  
Fetzer C(2004)undefined Acta Astronaut. 55 389-23
[3]  
Boisvert J(1961)undefined J. Chem. Phys. 35 844-1173
[4]  
Kinsey G(2013)undefined Prog. Photovolt. Res. Appl. 21 827-842
[5]  
Herbert P(2008)undefined J. Cryst. Growth 310 5198-undefined
[6]  
Yoon H(2014)undefined Prog. Photovolt: Res. Appl. 22 18-undefined
[7]  
Karam N(2012)undefined Sol. Energy Mater. Sol. Cells 101 68-undefined
[8]  
Sebolt W(2012)undefined J. Cryst. Growth 354 81-undefined
[9]  
Stroud JS(2004)undefined J. Cryst. Growth 273 111-undefined
[10]  
Green MA(1992)undefined J. Appl. Phys. 71 880-undefined