DocumentCode :
3604773
Title :
Liquid-Phase Crystallized Silicon Solar Cells on Glass: Increasing the Open-Circuit Voltage by Optimized Interlayers for n- and p-Type Absorbers
Author :
Amkreutz, Daniel ; Barker, William D. ; Kuhnapfel, Sven ; Sonntag, Paul ; Gabriel, Onno ; Gall, Stefan ; Bloeck, Ulrike ; Schmidt, Jan ; Haschke, Jan ; Rech, Bernd
Author_Institution :
Inst. for Silicon-Photovoltaics, Helmholtz-Zentrum Berlin fur Mater. und Energie GmbH, Berlin, Germany
Volume :
5
Issue :
6
fYear :
2015
Firstpage :
1757
Lastpage :
1761
Abstract :
Liquid-phase crystallization (LPC) has proven to be a suitable method to grow large-grained silicon films on commercially well-available glass substrates. Zone-melting crystallization with high-energy-density line sources such as lasers or electron beams enabled polycrystalline grain growth with wafer equivalent morphology. However, the electronic quality is strongly affected by the material used as the interlayer between the glass and the silicon absorber. Open-circuit voltages above 630 mV, and efficiencies up to 11.8% were demonstrated using n-type absorbers on a sputtered interlayer comprising a triple stack of SiO2/SiNx/SiO2. In this study, we present our results to further improve the device performance by investigating the influence of the interlayer on the open-circuit voltage of the devices and characterize the properties of the absorber and interface using bias light-dependent quantum efficiency data and transmission electron microscopy (TEM) images. Finally, we investigate the applicability of aluminum oxide (Al2O3) for passivation of p-type LPC absorbers.
Keywords :
alumina; crystallisation; glass; solar cells; transmission electron microscopy; LPC; TEM images; aluminum oxide; bias light-dependent quantum efficiency data; electronic quality; glass substrates; high-energy-density line sources; liquid-phase crystallized silicon solar cells; n-type absorbers; open-circuit voltage; optimized interlayers; p-type LPC absorber passivation; silicon absorber; sputtered interlayer; transmission electron microscopy; zone-melting crystallization; Crystallization; Glass; Passivation; Photovoltaic cells; Photovoltaic systems; Silicon; Liquid-phase crystallization (LPC); polycrystalline silicon; surface passivation;
fLanguage :
English
Journal_Title :
Photovoltaics, IEEE Journal of
Publisher :
ieee
ISSN :
2156-3381
Type :
jour
DOI :
10.1109/JPHOTOV.2015.2466434
Filename :
7214209
Link To Document :
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