• DocumentCode
    48642
  • Title

    New Approaches to Improve the Performance of Thin-Film Radial Junction Solar Cells Built Over Silicon Nanowire Arrays

  • Author

    Misra, Sudip ; Linwei Yu ; Foldyna, Martin ; Roca i Cabarrocas, Pere

  • Author_Institution
    Lab. de Phys. des Interfaces et Couches Minces, Ecole Polytech., Palaiseau, France
  • Volume
    5
  • Issue
    1
  • fYear
    2015
  • fDate
    Jan. 2015
  • Firstpage
    40
  • Lastpage
    45
  • Abstract
    Owing to their enhanced light trapping and antireflection effects, silicon nanowires (SiNWs) provide an active research platform for a new generation of cost-effective and efficient solar cells. By optimizing the density of nanowires and depositing amorphous silicon (a-Si:H) on top of them, stable radial junction p-i-n devices with efficiencies in the range of 8-9% have already been realized, and there is still room for improvement. For instance, by modifying the SiNW/a-Si:H interface, an open-circuit voltage as high as 0.9 V has been achieved. In addition, increasing the bandgap of the window layer is found to be effective for blue-response enhancement. Modeling of equivalent structures with a-Si:H nanowires by rigorous-coupled wave analysis method shows that short-circuit current density can be improved up to 20 mA/cm2, and changing the active material to crystalline silicon allows us to broaden the absorption to near infrared spectral region. Initial results with hydrogenated microcrystalline silicon as an active layer are also presented.
  • Keywords
    absorption coefficients; amorphous semiconductors; current density; elemental semiconductors; hydrogen; nanowires; short-circuit currents; silicon; solar cells; thin film devices; Si-Si:H; absorption; amorphous silicon; antireflection effects; blue-response enhancement; efficient solar cells; enhanced light trapping; equivalent structure modeling; hydrogenated microcrystalline silicon; infrared spectral region; nanowire density; open-circuit voltage; radial p-i-n junction devices; rigorous-coupled wave analysis method; short-circuit current density; silicon nanowire arrays; thin-film radial junction solar cells; voltage 0.9 V; window layer; Amorphous silicon; Indium tin oxide; Junctions; Photovoltaic cells; Substrates; Plasma-assisted vapor–liquid–solid (VLS); Plasma-assisted vapor???liquid???solid (VLS); radial junction; silicon nanowire; thin-film solar cells;
  • fLanguage
    English
  • Journal_Title
    Photovoltaics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    2156-3381
  • Type

    jour

  • DOI
    10.1109/JPHOTOV.2014.2366688
  • Filename
    6963263