• DocumentCode
    3085465
  • Title

    Multiphysics modeling of plasmonic organic solar cells with a unified finite-difference method

  • Author

    Sha, Wei E. I. ; Choy, Wallace C. H. ; Weng Cho Chew

  • Author_Institution
    Dept. of Electr. & Electron. Eng., Univ. of Hong Kong, Hong Kong, China
  • fYear
    2013
  • fDate
    1-3 Aug. 2013
  • Firstpage
    49
  • Lastpage
    52
  • Abstract
    A multiphysics study carries out on plasmonic organic solar cells (OSCs) by solving Maxwell´s equations and semiconductor (Poisson, drift-diffusion, and continuity) equations simultaneously with unified finite-difference framework. Regarding the Maxwell´s equations, the perfectly matched layer and periodic boundary conditions are imposed at the vertical and lateral directions of OSCs to simulate the infinite air region and metallic grating electrode, respectively. In view of the semiconductor equations, the Scharfetter-Gummel scheme and semi-implicit strategy are adopted respectively in the space and time domains. To model the bulk heterojunction OSCs, the Langevin bimolecular recombination and Onsager-Braun exciton dissociation models are fully taken into account. The exciton generation rate depending on the optical absorption of the organic active material can be obtained by solving the Maxwell´s equations and will be inserted into the semiconductor equations. Through the multiphysics model, we observed the increased shortcircuit current and dropped fill factor when OSCs incorporate a metallic grating anode supporting surface plasmon resonances. This work provides fundamental multiphysics modeling and understanding for plasmonic organic photovoltaics.
  • Keywords
    Maxwell equations; Poisson equation; electrochemical electrodes; finite difference methods; organic semiconductors; photovoltaic cells; plasmonics; solar cells; Langevin bimolecular recombination; Maxwell equation; Onsager-Braun exciton dissociation model; Poisson equation; Scharfetter-Gummel scheme; bulk heterojunction OSC; continuity equation; drift-diffusion equation; exciton generation rate; infinite air region simulation; metallic grating anode; metallic grating electrode simulation; multiphysics modeling; optical absorption; organic active material; perfectly matched layer condition; periodic boundary condition; plasmonic organic photovoltaics; plasmonic organic solar cells; semi-implicit strategy; semiconductor equation; surface plasmon resonance; unified finite-difference method; Anodes; Excitons; Gratings; Mathematical model; Maxwell equations; Photovoltaic cells; Plasmons;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electromagnetics (iWEM), 2013 IEEE International Workshop on
  • Conference_Location
    Kowloon
  • Print_ISBN
    978-1-4799-6654-7
  • Type

    conf

  • DOI
    10.1109/iWEM.2013.6888767
  • Filename
    6888767