Integration of screen-printing and rapid thermal processing technologies for silicon solar cell fabrication

被引:13
作者
Doshi, P
Mejia, J
Tate, K
Rohatgi, A
机构
[1] Dept. of Elec. and Comp. Engineering, Univ. Ctr. Excellence P., Georgia Institute of Technology, Atlanta
关键词
D O I
10.1109/55.511589
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
For the first time, the potentially cost-effective technologies of rapid thermal processing (RTP) and screen-printing (SP) have been combined into a single process sequence to achieve solar cell efficiencies as high as 14.7% on 0.2 Omega-cm FZ and 14.8% on 3 Omega-cm Ct silicon. These results were achieved without application of a nonhomogeneous (selective) emitter, texturing, or oxide passivation, By tailoring the RTP thermal cycles for emitter diffusion and firing of the screen-printed silver contacts, fill factor values >0.79 were realized on emitters with a sheet resistance (rho(s)) of similar to 20 Omega/square and grid shading <6%, Such high fill factors clearly demonstrate that screen-printed contacts can be fired on extremely shallow RTP emitters (x(j) = 0.25 - 0.3 mu m) without shunting cells, IQE analysis depicts a strong preference for shallow emitter junction depths to achieve optimal short wavelength response of these unpassivated emitters, In some cases, front contacts were printed through plasma enhanced chemical vapor deposited (PECVD) SiN/SiO2 dielectrics which prevented the shunting of shallow emitters by serving as partial barriers minimizing the diffusion of metallic species from the contacts. The firing of screen-printed contacts through these PECVD films, achieved the multiple purposes of contact formation, efficient front surface passivation due to annealing of the SW, and high quality antireflection (AR), Research is presently underway to further optimize the RTP emitter design for screen-printing and develop techniques for implementing selective emitter and oxide passivation technologies for higher efficiency cells.
引用
收藏
页码:404 / 406
页数:3
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