Title :
Degradation and failure mechanisms of a-Si:H solar cells with aluminum contacts
Author :
Haque, M.S. ; Naseem, H.A. ; Brown, W.D.
Author_Institution :
Dept. of Electr. Eng., Arkansas Univ., Fayetteville, AR, USA
Abstract :
Low temperature (100°C-300°C) annealing effects on a-Si:H solar cells with Al contacts have been investigated. A reduction in shunt resistance upon annealing in the temperature range of 150-180°C for thirty minutes was observed indicating degradation of the cells. Visible morphological changes of the aluminum surface and the a-Si:H film underneath initiate at approximately 170°C. Thirty minute annealing at 180°C decreased the shunt resistance by a factor of 50 and the solar cells showed a considerable decrease in efficiency and fill factor. Annealing at 200°C and higher degraded the solar cells to the point that no conversion occurred. The degradation and failure mechanisms of the solar cells can be explained using a simple model involving aluminum diffusion into the silicon followed by crystallization and type conversion of the n+ a-Si:H due to aluminum counterdoping
Keywords :
aluminium; amorphous semiconductors; annealing; crystallisation; diffusion; electrical contacts; elemental semiconductors; failure analysis; hydrogen; semiconductor thin films; silicon; solar cells; 100 to 300 C; Al; Al contacts; Si:H; a-Si:H solar cells; aluminum counterdoping; aluminum diffusion; aluminum surface; crystallization; efficiency decrease; failure mechanisms; fill factor decrease; low temperature annealing; n+ a-Si:H; shunt resistance reduction; visible morphological changes; Aluminum; Annealing; Crystallization; Degradation; Failure analysis; Photovoltaic cells; Silicon; Surface morphology; Surface resistance; Temperature distribution;
Conference_Titel :
Photovoltaic Energy Conversion, 1994., Conference Record of the Twenty Fourth. IEEE Photovoltaic Specialists Conference - 1994, 1994 IEEE First World Conference on
Conference_Location :
Waikoloa, HI
Print_ISBN :
0-7803-1460-3
DOI :
10.1109/WCPEC.1994.520043