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Application of field-enhanced rapid thermal annealing to activation of doped polycrystalline Si thin films

Authors
So, B.S.You, Y.H.Kim, H.J.Kim, Y.H.Hwang, J.H.Shin, D.H.Ryu, S.R.Choi, K.Kim, Y.C.
Issue Date
2005
Publisher
Materials Research Society
Citation
Materials Research Society Symposium Proceedings, v.862, pp.275 - 280
Journal Title
Materials Research Society Symposium Proceedings
Volume
862
Start Page
275
End Page
280
URI
https://scholarworks.bwise.kr/hongik/handle/2020.sw.hongik/25656
DOI
10.1557/proc-862-a2.4
ISSN
0272-9172
Abstract
Activation of polycrystalline silicon (poly-Si) thin films doped as n-type using selective ion implantation of phosphorous was performed employing field-enhanced rapid thermal annealing where rapid thermal annealing of halogen lamps is combined with alternating magnetic fields. The ion activation was evaluated using Hall effect measurements incorporating the resistivity, the charge carrier concentration, and the mobility. Statistical design of experiments is attempted in order to clarify the effects and interactions of processes variables on field-enhanced rapid thermal annealing towards ion activation: the three processing variables are furnace temperature, power of halogen lamp, and the alternating magnetic field. Hall effect measurements indicate that the furnace temperature and RTA power are found to be dominant in activating the doped polycrystalline Si in dose. The activation process results from the competition between charge carrier concentration and mobility: the increase in mobility is larger than the decrease in charge carrier concentration. © 2005 Materials Research Society.
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