Two-dimensional disorder for broadband, omnidirectional and polarization-insensitive absorption
arXiv:1211.6232 · doi:10.1364/OE.21.00A268
Abstract
The surface of thin-film solar cells can be tailored with photonic nanostructures to allow light trapping in the absorbing medium. This in turn increases the optical thickness of the film and thus enhances their absorption. Such a coherent light trapping is generally accomplished with deterministic photonic architectures. Here, we experimentally explore the use of a different nanostructure, a disordered one, for this purpose. We show that the disorder-induced modes in the film allow improvements in the absorption over a broad range of frequencies and impinging angles.
References in corpus (1)
Cited by in corpus (9)
- Light transport and localization in two-dimensional correlated disorder
- Experimental demonstration of broadband absorption enhancement in partially aperiodic silicon nanohole structures
- Omnidirectional and broadband absorption enhancement from trapezoidal Mie resonators in semiconductor metasurfaces
- Efficient light-trapping in ultrathin GaAs solar cells using quasi-random photonic crystals
- Role of short-range order in manipulating light absorption in disordered media
- The fundamental problem of treating light incoherence in photovoltaics and its practical consequences
- Uniform line fillings
- Deterministic and controllable photonic scattering media via direct laser writing
- Reciprocal space engineering with hyperuniform gold metasurfaces