• DocumentCode
    744620
  • Title

    Intensity-Modulated Spectroscopy on Loaded Organic Photovoltaic Cells

  • Author

    Adhitya, Krisna ; Alsulami, Abdullah ; Buckley, Alastair ; Tozer, Richard C. ; Grell, Martin

  • Author_Institution
    Dept. of Phys. & Astron., Univ. of Sheffield, Sheffield, UK
  • Volume
    5
  • Issue
    5
  • fYear
    2015
  • Firstpage
    1414
  • Lastpage
    1421
  • Abstract
    We configured a generic digital lock-in amplifier as a light intensity-modulated spectrometer for photovoltaic (PV) cells for intensity-modulated spectroscopy (IMS) up to 250 kHz. We performed IMS on a state-of-the-art bulk heterojunction (BHJ) organic PV (OPV) cell and introduced a new mode of IMS, wherein PV cells work under finite load, including maximum power point (MPP). Quantitative analysis supported by equivalent circuit simulations establishes MPP-IMS as favorable alternative to the commonly used intensity-modulated photovoltage/photocurrent spectroscopy (IMVS/IMPS) modes. Using IMS under finite load, we identify a high-frequency feature that is invisible in both IMPS and IMVS. The feature is ageing-related and becomes more prominent after long-term storage. We propose an extended equivalent circuit model that locates the origin of this feature at the BHJ itself and link it to diffusion of indium ions etched from the transparent electrode by the hole extracting PEDOT:PSS. Finally, we introduce a method to determine BHJ capacitance by IMS without absolute calibration of light intensity.
  • Keywords
    ageing; amplifiers; calibration; diffusion; equivalent circuits; organic semiconductors; photoconductivity; solar cells; BHJ capacitance; IMS; MPP-IMS; ageing; digital lock-in amplifier; equivalent circuit simulation; extended equivalent circuit model; finite loading; hole extracting PEDOT:PSS; indium ion etching; intensity-modulated photovoltage-photocurrent spectroscopy; light intensity; light intensity-modulated spectroscopy; maximum power point; organic photovoltaic cells; quantitative analysis; state-of-the-art bulk heterojunction organic PV cell; transparent electrode; Equivalent circuits; Frequency modulation; Integrated circuit modeling; Light emitting diodes; Photovoltaic cells; Spectroscopy; Voltage measurement; Bulk heterojunction (BHJ); PEDOT:PSS; intensity-modulated spectroscopy (IMS); maximum power point (MPP); organic photovoltaics (OPV);
  • fLanguage
    English
  • Journal_Title
    Photovoltaics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    2156-3381
  • Type

    jour

  • DOI
    10.1109/JPHOTOV.2015.2447838
  • Filename
    7145374