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    AuthorAdachi, Michael M. (1)Dong, Haopeng (1)
    Hoogland, Sjoerd (1)
    Kumacheva, Eugenia (1)Labelle, André J. (1)View MoreJournalNano Letters (1)KAUST Grant NumberKUS-11-009-21 (1)Publisher
    American Chemical Society (ACS) (1)
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    Colloidal quantum dots (1)
    localized surface plasmons (1)
    nanoshells (1)near-field (1)photovoltaics (1)View MoreTypeArticle (1)Year (Issue Date)2013 (1)Item Availability
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    Jointly Tuned Plasmonic–Excitonic Photovoltaics Using Nanoshells

    Paz-Soldan, Daniel; Lee, Anna; Thon, Susanna M.; Adachi, Michael M.; Dong, Haopeng; Maraghechi, Pouya; Yuan, Mingjian; Labelle, André J.; Hoogland, Sjoerd; Liu, Kun; Kumacheva, Eugenia; Sargent, Edward H. (Nano Letters, American Chemical Society (ACS), 2013-03-06) [Article]
    Recent advances in spectrally tuned, solution-processed plasmonic nanoparticles have provided unprecedented control over light's propagation and absorption via engineering at the nanoscale. Simultaneous parallel progress in colloidal quantum dot photovoltaics offers the potential for low-cost, large-area solar power; however, these devices suffer from poor quantum efficiency in the more weakly absorbed infrared portion of the sun's spectrum. Here, we report a plasmonic-excitonic solar cell that combines two classes of solution-processed infrared materials that we tune jointly. We show through experiment and theory that a plasmonic-excitonic design using gold nanoshells with optimized single particle scattering-to-absorption cross-section ratios leads to a strong enhancement in near-field absorption and a resultant 35% enhancement in photocurrent in the performance-limiting near-infrared spectral region. © 2013 American Chemical Society.
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