DocumentCode :
34664
Title :
Optics and Light Trapping for Tandem Solar Cells on Silicon
Author :
Lal, Niraj N. ; White, T.P. ; Catchpole, Kylie R.
Author_Institution :
Centre for Sustainable Energy Syst., Australian Nat. Univ., Canberra, ACT, Australia
Volume :
4
Issue :
6
fYear :
2014
fDate :
Nov. 2014
Firstpage :
1380
Lastpage :
1386
Abstract :
The rapid advancement of thin-film photovoltaic (PV) technology increases the real possibility of large-area Si-based tandems reaching 30% efficiency, although light in these devices must be managed carefully. We identify the optical requirements to reach high efficiencies. Strict conditions are placed on material parasitic absorption and transmission of contacts: Absorption of 20% of sub-bandgap light leads to the required top-cell efficiencies of 18% at a bandgap of 1.5 eV to break even and 23% to reach tandem efficiencies of 30%. Perovskite-silicon tandem cells present the first low-cost devices capable of improving standalone 25% efficiencies and we quantify the efficiency gains and reduced thickness afforded by wavelength-selective light trapping. An analytical formalism for Lambertian tandem light trapping is introduced, yielding stringent requirements for wavelength selectivity. Applying these principles to a perovskite-based top cell characterized by strong absorption and high luminescence efficiency we show that tandem efficiencies greater than 30% are possible with a bandgap of Eg = 1.55 eV and carrier diffusion lengths less than 100 nm. At an optimal top-cell bandgap of 1.7 eV, with diffusion lengths of current vapor-deposited CH3NH3PbIxCl1-x perovskites, we show that tandem efficiencies beyond 35% are achievable with careful light management.
Keywords :
carrier lifetime; elemental semiconductors; energy gap; lead compounds; light absorption; light transmission; luminescence; organic compounds; semiconductor device models; semiconductor thin films; silicon; solar cells; Lambertian tandem light trapping; Si; carrier diffusion lengths; luminescence efficiency; material parasitic absorption; material parasitic transmission; perovskite-silicon tandem cells; subbandgap light absorption; tandem solar cells; thin-film photovoltaic technology; top-cell efficiencies; vapor-deposited perovskites; wavelength selectivity; wavelength-selective light trapping; Absorption; Light trapping; Optical losses; Photonic band gap; Photovoltaic cells; Silicon; Lambertian; light trapping; perovskite; silicon; tandem;
fLanguage :
English
Journal_Title :
Photovoltaics, IEEE Journal of
Publisher :
ieee
ISSN :
2156-3381
Type :
jour
DOI :
10.1109/JPHOTOV.2014.2342491
Filename :
6880306
Link To Document :
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