Two-dimensional GaAs/AlGaAs superlattice structures for solar cell applications: ultimate efficiency estimation
arXiv:0905.0783 · doi:10.1063/1.3253584
Abstract
We calculate the band structure of a two-dimensional GaAs/AlGaAs superlattice and estimate the ultimate efficiency of solar cells using this type of structure for solar energy conversion. The superlattice under consideration consists of gallium arsenide rods forming a square lattice and embedded in aluminium gallium arsenide. The ultimate efficiency is determined versus structural parameters including the filling fraction, the superlattice constant, the rod geometry and the concentration of Al in the matrix material. The calculated efficiency of the superlattice proves to exceed the efficiency of each component material in the monolithic state in a wide range of parameter values.
11 pages, 7 figures
Cited by in corpus (5)
- Geometrical complexity of the antidots unit cell effect on the spin wave excitations spectra
- Electronic and hole spectra of layered systems of cylindrical rod arrays: solar cell application
- Intraband absorption in finite, inhomogeneous quantum dot stacks for intermediate band solar cells: limitations and optimization
- Electronic and hole minibands in quantum wire arrays of different crystallographic structure
- Intermediate band formation and intraband absorption for electrons in an inhomogeneous chain of quantum dots