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Published byLoren Howard Modified over 9 years ago
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Light management in thin-film solar cells Albert Polman Center for Nanophotonics FOM-Institute AMOLF Amsterdam, The Netherlands
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Vanguard satellite 1958
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The first practical solar panel (1954) Bell Laboratories (1954)
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2010
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Price per solar Watt vs. installed power P. Maycock
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Black dots: area of solar panels needed to generate all of the worlds primary energy (all energy consumed: electricity, heat, fossil fuels) Solar irradiance on earth assuming 8% efficient photovoltaics
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Available renewable energy sources
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Solar cell basic geometry
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Solar cell operation
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Effects of R shunt and R series on I-V curve Ideal IV curve Low R sh High R se R sh = ∞ R se = 0
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Light is poorly absorbed in a thin-film solar cell Solar spectrum absorbed in 2 m thick Si film
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“Quantum defect” limits efficiency Photons are quantized energy packets: A 2 eV photon will give create max. 1 Volt over the p-n junction A 0.5 eV photon is not absorbed E g (Si)=1.1 eV
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Triple-junction tandem solar cell 1.5 V 1.0 V 0.5 V
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Record efficiency solar cell
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From: Richard King (Spectrolab) Triple-junction tandem solar cell layer geometry
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Efficiency limits of different solar cell types (2010) 3-junction tandem crystal Si wafer thin film: CdTe poly-Si amorphous Si organic/polymer dye-sensitized other Too expensive Too low efficiency 2009: CdTe thin film cells costs: < 1 $/W
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Relative abundance of elements vs. atomic nr. from P.H. Stauffer et al, Rare Earth Elements - Critical Resources for High Technology, USGS (2002) Materials resources are limited Solutions: 1) Earth Abundant Semiconductors (Si,Cu 2 O, Zn 3 P 2, FeS 2 ) 2) Enhance Light Absorption/reduce semiconductor volume Requirements to construct 1 TW of PV with optically thick cells at 15% efficiency
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Photovoltaic materials production and reserve base
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Si solar cell efficiencies
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… © Ron Tandberg
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