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    AuthorBarkhouse, Aaron R. (1)Debnath, Ratan (1)
    Grätzel, Michael (1)
    Konstantatos, Gerasimos (1)Kramer, Illan J. (1)View MoreJournalACS Nano (1)KAUST Grant NumberKUS-I1-009-21 (1)PublisherAmerican Chemical Society (ACS) (1)SubjectDepleted heterojunction (1)Electron transfer (1)Exciton dissociation (1)
    PbS (1)
    Quantum dot (1)View MoreTypeArticle (1)Year (Issue Date)
    2010 (1)
    Item AvailabilityMetadata Only (1)

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    Depleted-Heterojunction Colloidal Quantum Dot Solar Cells

    Pattantyus-Abraham, Andras G.; Kramer, Illan J.; Barkhouse, Aaron R.; Wang, Xihua; Konstantatos, Gerasimos; Debnath, Ratan; Levina, Larissa; Raabe, Ines; Nazeeruddin, Mohammad K.; Grätzel, Michael; Sargent, Edward H. (ACS Nano, American Chemical Society (ACS), 2010-05-24) [Article]
    Colloidal quantum dot (CQD) photovoltaics combine low-cost solution processability with quantum size-effect tunability to match absorption with the solar spectrum. Rapid recent advances in CQD photovoltaics have led to impressive 3.6% AM1.5 solar power conversion efficiencies. Two distinct device architectures and operating mechanisms have been advanced. The first-the Schottky device-was optimized and explained in terms of a depletion region driving electron-hole pair separation on the semiconductor side of a junction between an opaque low-work-function metal and a p-type CQD film. The second-the excitonic device-employed a CQD layer atop a transparent conductive oxide (TCO) and was explained in terms of diffusive exciton transport via energy transfer followed by exciton separation at the type-II heterointerface between the CQD film and the TCO. Here we fabricate CQD photovoltaic devices on TCOs and show that our devices rely on the establishment of a depletion region for field-driven charge transport and separation, and that they also exploit the large bandgap of the TCO to improve rectification and block undesired hole extraction. The resultant depletedheterojunction solar cells provide a 5.1% AM1.5 power conversion efficiency. The devices employ infrared-bandgap size-effect-tuned PbS CQDs, enabling broadband harvesting of the solar spectrum. We report the highest opencircuit voltages observed in solid-state CQD solar cells to date, as well as fill factors approaching 60%, through the combination of efficient hole blocking (heterojunction) and very small minority carrier density (depletion) in the large-bandgap moiety. © 2010 American Chemical Society.
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