• DocumentCode
    3524311
  • Title

    Modeling the optical and electrical response of nanostructured III–V solar cells

  • Author

    Driscoll, Kristina ; Hubbard, Seth

  • Author_Institution
    NanoPower Res. Labs., Rochester Inst. of Technol., Rochester, NY, USA
  • fYear
    2012
  • fDate
    3-8 June 2012
  • Abstract
    Concentrator Photovoltaics (CPV) have emerged as a potential alternative energy source due to a favorable balance between cost and efficiency. In contrast to traditional flat panel systems, CPVs result in cheaper fabrication costs since a bulk of the pricey crystalline solar cell is replaced with less expensive light collection and concentrator materials. However, in order to remain competitive with other energy technologies, CPV systems require core solar cells with both high efficiencies and low temperature coefficients. To address the previous need, incorporating nanostructures, such as quantum wells (QW) and quantum dots (QD), into III-V solar cells has been proposed as a potential route towards achieving efficiencies well exceeding 50% under concentration. Hence, vital to the design process of this particular class of solar cells is the ability to accurately calculate nanostructure properties critical to the operation of CPV devices. Here, we have developed a modeling routine using the physics based software Crosslight to systematically study how quantum effects influence the performance of photovoltaics. In particular, this methodology can be applied to study how nanoscale variables, including size, shape and material compositions, can be used to tailor the electrical and optical properties at the device level. Finally, macro-level engineering of the nanostructures, such as the number of stacked layers as well as the position of these structures within the device, is explored in optimizing the overall device response.
  • Keywords
    III-V semiconductors; nanostructured materials; power engineering computing; quantum dots; quantum wells; solar cells; CPV devices; QD; QW; alternative energy source; concentrator photovoltaics; core solar cells; electrical response; energy technologies; flat panel systems; macrolevel engineering; material compositions; nanoscale variables; nanostructured III-V solar cells; optical response; physics based software Crosslight; quantum dots; quantum effects; quantum wells; shape compositions; size compositions; Analytical models; Gallium arsenide; Nanoscale devices; Performance evaluation; Photoconductivity; Quantum wells; Radiative recombination; InAs; nanostructures; photovoltaic cells; quantum confinement;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Photovoltaic Specialists Conference (PVSC), 2012 38th IEEE
  • Conference_Location
    Austin, TX
  • ISSN
    0160-8371
  • Print_ISBN
    978-1-4673-0064-3
  • Type

    conf

  • DOI
    10.1109/PVSC.2012.6318211
  • Filename
    6318211