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    Lateral spectrum splitting system with perovskite photovoltaic cells

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    Author
    Chrysler, B.D.
    Shaheen, S.E.
    Kostuk, R.K.
    Affiliation
    University of Arizona, James C. Wyant College of Optical Sciences
    University of Arizona, Department of Electrical and Computer Engineering
    Issue Date
    2022
    Keywords
    cascaded hologram
    diffraction
    holography
    multijunction
    perovskites
    photovoltaics
    rigorous coupled wave analysis
    spectrum splitting
    
    Metadata
    Show full item record
    Publisher
    SPIE
    Citation
    Chrysler, B. D., Shaheen, S. E., & Kostuk, R. K. (2022). Lateral spectrum splitting system with perovskite photovoltaic cells. Journal of Photonics for Energy, 12(2).
    Journal
    Journal of Photonics for Energy
    Rights
    Copyright © 2022 SPIE.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    We examine the potential of a multijunction spectrum-splitting photovoltaic (PV) solar energy system with perovskite PV cells. Spectrum splitting allows combinations of different energy band gap PV cells that are laterally separated and avoids the complications of fabricating tandem stack architectures. Volume holographic optical elements have been shown to be effective for the spectrum-splitting operation and can be incorporated into compact module packages. However, one of the remaining issues for spectrum splitting systems is the availability of low-cost wide band gap and intermediate band gap cells that are required for realizing high overall conversion efficiency. Perovskite PV cells have been fabricated with a wide range of band gap energies that potentially satisfy the requirements for multijunction spectrum-splitting systems. A spectrum-splitting system is evaluated for a combination of perovskite PV cells with energy band gaps of 2.30, 1.63, and 1.25 eV and with conversion efficiencies of 10.4%, 21.6%, and 20.4%, respectively, which have been demonstrated experimentally in the literature. First, the design of a cascaded volume holographic lens for spectral separation in three spectral bands is presented. Second, a rigorous coupled wave model is developed for computing the diffraction efficiency of a cascaded hologram. The model accounts for cross-coupling between higher diffraction orders in the upper and lower holograms, which previous models have not accounted for but is included here with the experimental verification. Lastly, the optical losses in the system are analyzed and the hypothetical power conversion efficiency is calculated to be 26.7%. © 2022 Society of Photo-Optical Instrumentation Engineers (SPIE).
    Note
    Immediate access
    ISSN
    1947-7988
    DOI
    10.1117/1.JPE.12.022206
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.1117/1.JPE.12.022206
    Scopus Count
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    UA Faculty Publications

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