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searching for shockley–Queisser limit 7 found (31 total)

alternate case: Shockley–Queisser limit

Anna Fontcuberta i Morral (1,554 words) [view diff] exact match in snippet view article find links to article

i Morral, Anna (2013). "Single-nanowire solar cells beyond the ShockleyQueisser limit". Nature Photonics. 7 (4): 306–310. arXiv:1301.1068. Bibcode:2013NaPho
Photon upconversion (2,187 words) [view diff] exact match in snippet view article find links to article
S2CID 18478048. Boriskina, S.V.; Chen, G. (2014). "Exceeding the solar cell ShockleyQueisser limit via thermal up-conversion of low-energy photons". Optics Communications
Two-photon photovoltaic effect (2,531 words) [view diff] exact match in snippet view article find links to article
material for the conventional photovoltaic effect. Due to the ShockleyQueisser limit it is known that a single p-n junction photovoltaic cell maximum
Mark S. Lundstrom (2,611 words) [view diff] case mismatch in snippet view article find links to article
(April 2013). "Design of GaAs Solar Cells Operating Close to the ShockleyQueisser Limit". IEEE Journal of Photovoltaics. 3 (2): 737–744. doi:10.1109/JPHOTOV
Gallium arsenide (5,147 words) [view diff] case mismatch in snippet view article find links to article
et al. (2013). "Design of GaAs Solar Cells Operating Close to the ShockleyQueisser Limit". IEEE Journal of Photovoltaics. 3 (2): 737. doi:10.1109/JPHOTOV
Energy applications of nanotechnology (4,040 words) [view diff] case mismatch in snippet view article find links to article
"Opportunities and Limitations for Nanophotonic Structures To Exceed the ShockleyQueisser Limit". ACS Nano. 10 (9): 8620–8631. doi:10.1021/acsnano.6b03950. ISSN 1936-0851
Outline of solar energy (7,478 words) [view diff] exact match in snippet view article find links to article
cell – are solar cells that are potentially able to overcome the Shockley-Queisser limit of 31-41% power efficiency for single bandgap solar cells. Solar