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Upscaling of polymer solar cell fabrication using full roll-to-roll processing

Nanoscale · 2010 · Vol. 2(6) · pp. 873–873
Frederik C. KrebsThomas TromholtMikkel Jørgensen

Abstract

Upscaling of the manufacture of polymer solar cells is detailed with emphasis on cost analysis and practical approach. The device modules were prepared using both slot-die coating and screen printing the active layers in the form of stripes that were serially connected. The stripe width was varied and the resultant performance analysed. Wider stripes give access to higher geometric fill factors and lower aperture loss while they also present larger sheet resistive losses. An optimum was found through preparation of serially connected stripes having widths of 9, 13 and 18 mm with nominal geometric fill factors (excluding bus bars) of 50, 67 and 75% respectively. In addition modules with lengths of 6, 10, 20, 22.5 and 25 cm were explored. The devices were prepared by full roll-to-roll solution processing in a web width of 305 mm and roll lengths of up to 200 m. The devices were encapsulated with a barrier material in a full roll-to-roll process using standard adhesives giving the devices excellent stability during storage and operation. The total area of processed polymer solar cell was around 60 m2 per run. The solar cells were characterised using a roll-to-roll system comprising a solar simulator and an IV-curve tracer. After characterisation the solar cell modules were cut into sheets using a sheeting machine and contacted using button contacts applied by crimping. Based on this a detailed cost analysis was made showing that it is possible to prepare complete and contacted polymer solar cell modules on this scale at an area cost of 89 euro m(-2) and an electricity cost of 8.1 euro Wp(-1). The cost analysis was separated into the manufacturing cost, materials cost and also the capital investment required for setting up a complete production plant on this scale. Even though the cost in euro Wp(-1) is comparable to the cost for electricity using existing technologies the levelized cost of electricity (LCOE) is expected to be significantly higher than the existing technologies due to the inferior operational lifetime. The presented devices are thus competitive for consumer electronics but ill-suited for on-grid electricity production in their current form.

Organic Electronics and Photovoltaicssolar cell performance optimizationSilicon and Solar Cell TechnologiesRoll-to-roll processingSolar cellMaterials scienceFabricationResistive touchscreenPolymerAperture (computer memory)Composite materialCoatingOptoelectronics

Funding

  • Strategic Research Council
Citations
1,014
FWCI
131.52
field-weighted impact
References
49
Percentile
100%
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Citations per year
References
Polymer–Fullerene Composite Solar Cells
Angewandte Chemie International Edition · 2007 · 4,128 citations
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Fabrication and processing of polymer solar cells: A review of printing and coating techniques
Solar Energy Materials and Solar Cells · 2008 · 3,202 citations
Low band gap polymers for organic photovoltaics
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Stability/degradation of polymer solar cells
Solar Energy Materials and Solar Cells · 2008 · 2,307 citations
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Upscaling of polymer solar cell fabrication using full roll-to-roll processing · Scinovex