Detailed Balance Analysis of Nanophotonic Solar Cells
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We present a detailed balance based approach for performing current density-voltage characteristic modeling of nanophotonic solar cells. This approach takes into account the intrinsic material non-idealities, and is useful for determining the theoretical limit of solar cell efficiency for a given structure. Our approach only requires the cell's absorption spectra over all angles, which can be readily calculated using available simulation tools. Using this approach, we elucidate the physics of open-circuit voltage enhancement over bulk cells in nanoscale thin film structures, by showing that the enhancement is related to the absorption suppression in the immediate spectral region above the bandgap. We also show that with proper design, the use of a grating on a nanoscale thin film can increase its short-circuit current, while preserving its voltage-enhancing capabilities.
Design for strong absorption in a nanowire array tandem solar cell.
Chen Y, Pistol M, Anttu N Sci Rep. 2016; 6:32349.
PMID: 27574019 PMC: 5004118. DOI: 10.1038/srep32349.
Spatial resolution effect of light coupling structures.
Li J, Li K, Schuster C, Su R, Wang X, Borges B Sci Rep. 2015; 5:18500.
PMID: 26678574 PMC: 4683437. DOI: 10.1038/srep18500.
The generalized Shockley-Queisser limit for nanostructured solar cells.
Xu Y, Gong T, Munday J Sci Rep. 2015; 5:13536.
PMID: 26329479 PMC: 4557037. DOI: 10.1038/srep13536.
Resonant Nanophotonic Spectrum Splitting for Ultrathin Multijunction Solar Cells.
Mann S, Garnett E ACS Photonics. 2015; 2(7):816-821.
PMID: 26322319 PMC: 4550012. DOI: 10.1021/acsphotonics.5b00260.