The Journal of Physical Chemistry C · 2014 · 26 citations · 56 references
EngineeringOrganic ElectronicsSilver ParticlesOrganic Solar CellSitu Vacuum DepositionPlasmon-enhanced PhotovoltaicsChemistryPlasmonic Silver NanoparticlesPhotovoltaicsNanophotonicsPlasmonic MaterialSolar PowerOrganic SemiconductorOrganic Charge-transfer CompoundPlasmonicsElectronic MaterialsPlasmonic CatalysisApplied PhysicsPlasmonic Near-field EnhancementSolar CellsDirect Electrical EvidenceSolar Cell Materials
We present a simple and versatile technique to introduce plasmonic silver nanoparticles into organic thin film devices by in situ vacuum deposition. Silver particles with 80 nm diameter at the back of small molecule organic solar cells increase the power conversion efficiency (PCE). Doped organic transport layers allow one to separate electrical and optical effects. By a systematic variation of the position of the silver particles within the solar cell stack, we can thus clearly distinguish a near-field photocurrent gain in the IR that decays to one-half on length scales of around 4 nm, and a less distance-dependent selective mirror effect for short wavelength, which allows one to optimize devices for different wavelengths simultaneously. Device optimization reveals that plasmonic increased absorption can be used to significantly reduce the thickness of the absorber layers and gain efficiency through improved transport properties. A plasmonic zinc phthalocyanine fullerene-C60 solar cell that yields improved photocurrent, fill factor, and PCE of 2.6% includes one-half of the absorber material of an optimized reference device with PCE of 2.4%. The design priciples for plasmonic solar cells are general and were confirmed in thin devices containing zinc 1,8,15,22-tetrafluoro-phthalocyanine, improving the PCE from 2.7% to 3.4%.
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Plasmonics for improved photovoltaic devices
Harry A. Atwater, Albert Polman · Nature Materials · 2010 · 8.2K citations
Nucleation and growth of thin films
J. A. Venables, G. D. T. Spiller, M. Hanbücken · Reports on Progress in Physics · 1984 · 2.8K citations