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  2. Shockley–Queisser limit - Wikipedia

    en.wikipedia.org/wiki/ShockleyQueisser_limit

    The ShockleyQueisser limit, zoomed in near the region of peak efficiency. In a traditional solid-state semiconductor such as silicon, a solar cell is made from two doped crystals, one an n-type semiconductor, which has extra free electrons, and the other a p-type semiconductor, which is lacking free electrons, referred to as "holes."

  3. Thermodynamic efficiency limit - Wikipedia

    en.wikipedia.org/wiki/Thermodynamic_efficiency_limit

    The Shockley-Queisser limit for the efficiency of a single-junction solar cell under unconcentrated sunlight. This calculated curve uses actual solar spectrum data, and therefore the curve is wiggly from IR absorption bands in the atmosphere. This efficiency limit of about 34% can be exceeded by multijunction solar cells.

  4. Solar-cell efficiency - Wikipedia

    en.wikipedia.org/wiki/Solar-cell_efficiency

    The ShockleyQueisser limit for the efficiency of a single-junction solar cell under unconcentrated sunlight at 273 K. This calculated curve uses actual solar spectrum data, and therefore the curve is wiggly from IR absorption bands in the atmosphere. This efficiency limit of ~34% can be exceeded by multijunction solar cells.

  5. Two-photon photovoltaic effect - Wikipedia

    en.wikipedia.org/wiki/Two-photon_photovoltaic_effect

    Due to the ShockleyQueisser limit [6] it is known that a single p-n junction photovoltaic cell maximum solar conversion efficiency is around 33.7% for a bandgap of 1.34eV. However, Silicon has a bandgap of 1.1eV, corresponding to an efficiency of 32%.

  6. Multiple exciton generation - Wikipedia

    en.wikipedia.org/wiki/Multiple_exciton_generation

    Breakdown of the causes for the Shockley-Queisser limit. The black height is Shockley-Queisser limit for the maximum energy that can be extracted as useful electrical power in a conventional solar cell. However, a multiple-exciton-generation solar cell can also use some of the energy in the green area (and to a lesser extent the blue area ...

  7. Third-generation photovoltaic cell - Wikipedia

    en.wikipedia.org/wiki/Third-generation...

    Third-generation photovoltaic cells are solar cells that are potentially able to overcome the ShockleyQueisser limit of 31–41% power efficiency for single bandgap solar cells. This includes a range of alternatives to cells made of semiconducting p-n junctions ("first generation") and thin film cells ("second generation").

  8. Multi-junction solar cell - Wikipedia

    en.wikipedia.org/wiki/Multi-junction_solar_cell

    The ShockleyQueisser limit for the efficiency of a single-junction solar cell. It is essentially impossible for a single-junction solar cell, under unconcentrated sunlight, to have more than ~34% efficiency. A multi-junction cell, however, can exceed that limit.

  9. Thin-film solar cell - Wikipedia

    en.wikipedia.org/wiki/Thin-film_solar_cell

    Some third-generation solar cells boost efficiency through the integration of concentrator and/or multi-junction device geometry. [63] This can lead to efficiencies larger than the ShockleyQueisser limit of approximately 42% efficiency for a single-junction semiconductor solar cell under one-sun illumination. [86]