DocumentCode
413796
Title
Gettering and poisoning of silicon wafers by phosphorus diffused layers
Author
Macdonald, D. ; Cheung, A. ; Cuevas, A.
Author_Institution
Dept. of Eng., Australian Nat. Univ., Canberra, ACT, Australia
Volume
2
fYear
2003
fDate
18-18 May 2003
Firstpage
1336
Abstract
The effectiveness of phosphorus gettering, and the possible re-injection of impurities from the gettering layer during subsequent annealing, has been studied through the use of float-zone samples deliberately contaminated with iron. Lifetime measurements reveal that phosphorus gettering, in this case at 880/spl deg/C, initially removes more than 99% of the iron from the wafer bulk, to levels below 1/spl times/10/sup 11/ cm/sup -3/. However, upon further annealing at temperatures greater than the gettering temperature, some of the iron is injected back into the wafer. Annealing at 900/spl deg/C caused a significant amount of this ´poisoning´, with 7% of the pre-gettered iron returning to the bulk, resulting in a final Fe concentration around 5/spl times/10/sup 11/ cm/sup -3/. At 800/spl deg/C there was no detectable re-injection of Fe within uncertainty. The results may have implications for optimising industrial metallisation fire-through processes for multicrystalline solar cells, which contain relatively high levels of iron and other metal impurities.
Keywords
annealing; carrier density; carrier lifetime; elemental semiconductors; getters; impurity distribution; iron; metallisation; phosphorus; semiconductor doping; silicon; solar cells; 800 degC; 880 degC; 900 degC; Si-P; Si:Fe; annealing; carrier density; carrier lifetime; float zone sample; gettering; iron contamination; metal impurities; multicrystalline solar cells; optimising industrial metallisation; phosphorus diffused layers; poisoning; silicon wafers;
fLanguage
English
Publisher
ieee
Conference_Titel
Photovoltaic Energy Conversion, 2003. Proceedings of 3rd World Conference on
Conference_Location
Osaka, Japan
Print_ISBN
4-9901816-0-3
Type
conf
Filename
1306168
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