DocumentCode :
15333
Title :
Current Conduction Mechanism of Front-Side Contact of N-Type Crystalline Si Solar Cells With Ag/Al Pastes
Author :
Liang Liang ; Zhigang Li ; Lap Kin Cheng ; Takeda, Nobuo ; Young, R.J.S. ; Carroll, Aaron
Author_Institution :
Central R&D, DuPont, Wilmington, DE, USA
Volume :
4
Issue :
2
fYear :
2014
fDate :
Mar-14
Firstpage :
549
Lastpage :
553
Abstract :
Recently, n-type crystalline Si (c-Si) cells with front-side (FS) metallization Ag/Al paste have attracted considerable attention. However, a clear understanding of current conduction mechanism is still lacking. We report here the results of our microstructural investigation of the interfacial contact region using electron microscopy techniques. In optimally fired cells, we did not find any Al-Si eutectic layer on the emitter surface that would support a regrowth mechanism as found during the back surface field formation process commonly practiced to create the full plane Al back contact of p-type industrial solar cells. The presence of SiN x antireflection coating has possibly altered significantly the chemistry between Si and Al. The observed microstructures suggest that the current conduction is predominantly tunneling through ultrathin interfacial glass, assisted by the presence of nano-Ag colloids. We believe this mechanism is similar to the current conduction model we have proposed previously for FS Ag-contact of p-type c-Si solar cells with Ag paste.
Keywords :
aluminium; antireflection coatings; colloids; crystal microstructure; electrical conductivity; elemental semiconductors; nanostructured materials; scanning electron microscopy; semiconductor device metallisation; semiconductor-metal boundaries; silicon; silver; solar cells; tunnelling; Si-Ag-Al; antireflection coating; current conduction mechanism; current conduction model; electron microscopy; emitter surface; front-side contact; front-side metallization paste; interfacial contact region; microstructural investigation; n-type crystalline solar cells; nanoAg colloids; tunneling; ultrathin interfacial glass; Glass; Microstructure; Photovoltaic cells; Photovoltaic systems; Silicon; Current conduction mechanism; front-side (FS) contact; microstructural investigation; n-type crystalline Si solar cells;
fLanguage :
English
Journal_Title :
Photovoltaics, IEEE Journal of
Publisher :
ieee
ISSN :
2156-3381
Type :
jour
DOI :
10.1109/JPHOTOV.2013.2292350
Filename :
6679263
Link To Document :
بازگشت