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Recombination in polymer-fullerene bulk heterojunction solar cells

Physical Review B · 2010 · Vol. 82(24)
Sarah R. CowanAnshuman RoyAlan J. Heeger

Abstract

Recombination of photogenerated charge carriers in polymer bulk heterojunction (BHJ) solar cells reduces the short circuit current $({J}_{sc})$ and the fill factor (FF). Identifying the mechanism of recombination is, therefore, fundamentally important for increasing the power conversion efficiency. Light intensity and temperature-dependent current-voltage measurements on polymer BHJ cells made from a variety of different semiconducting polymers and fullerenes show that the recombination kinetics are voltage dependent and evolve from first-order recombination at short circuit to bimolecular recombination at open circuit as a result of increasing the voltage-dependent charge carrier density in the cell. The ``missing 0.3 V'' inferred from comparison of the band gaps of the bulk heterojunction materials and the measured open-circuit voltage at room-temperature results from the temperature dependence of the quasi-Fermi levels in the polymer and fullerene domains---a conclusion based on the fundamental statistics of fermions.

Organic Electronics and PhotovoltaicsThin-Film Transistor TechnologiesConducting polymers and applicationsOpen-circuit voltagePolymer solar cellMaterials scienceFullereneRecombinationOptoelectronicsCharge carrierPolymerHeterojunctionSolar cell

Funding

  • U.S. Department of Energy
  • Office of Science
  • Basic Energy Sciences
Citations
2,026
FWCI
35.23
field-weighted impact
References
30
Percentile
100%
vs. same field & year
Citations per year
References
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Origin of the Open Circuit Voltage of Plastic Solar Cells
Advanced Functional Materials · 2001 · 1,793 citations
Detailed Balance Limit of Efficiency of<i>p-n</i>Junction Solar Cells
Journal of Applied Physics · 1961 · 12,706 citations
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