Highly efficient anti‐reflection textures for solar cells that allow a fabrication using a two‐step bottom‐up approach are reported. Hereby, nanospheres of tailored sizes are deposited as a monolayer on a substrate and the resulting height profile is used as a template for structuring the silicon surface. By applying these textures to crystalline silicon solar cells, it is numerically shown that such interfaces provide excellent broadband suppression of reflection while also enhancing the effective path‐length through oblique‐angle scattering into the medium. Reflectance values around 5% can be reached and sustained for incident angles up to 40°. The short‐circuit current density obtained with the disordered texture and assuming two‐pass ab...
Haase C, Stiebig H. Thin-film silicon solar cells with efficient periodic light trapping texture. Ap...
A surface texture enhances the capacity of a solar cell to absorb incident radiation. In high effici...
Nano-scale randomly textured front transparent oxides are superposed on micro-scale etched glass sub...
We study the light-trapping properties of surface textures generated by a bottom-up approach, which ...
The low conversion efficiency of thin-film silicon solar cells currently prevents them from competin...
Nano-textured interfaces between two media of different refractive indices scatter light. The angula...
Nano-textured interfaces between two media of different refractive indices scatter light. The angula...
We numerically investigate the light-absorption behavior of thin-film silicon for normal-incident li...
For thin silicon solar cells, standard pyramidal textures cannot be used as antireflection structure...
Nano-scale randomly textured front transparent oxides are superposed on micro-scale etched glass sub...
For solar cells based on thin-film microcrystalline (mu c-Si:H) or amorphous silicon (a-Si:H) with a...
We study the light-trapping properties of surface textures generated by a bottom-up approach, which ...
Textures on semiconductor materials, such as monocrystalline and multicrystalline silicon (Si), cons...
We present a modelling study of thin silicon based solar cells endowed with periodic and decoupled f...
Backscattering from nanostructured surfaces greatly diminishes the efficacy of light trapping solar ...
Haase C, Stiebig H. Thin-film silicon solar cells with efficient periodic light trapping texture. Ap...
A surface texture enhances the capacity of a solar cell to absorb incident radiation. In high effici...
Nano-scale randomly textured front transparent oxides are superposed on micro-scale etched glass sub...
We study the light-trapping properties of surface textures generated by a bottom-up approach, which ...
The low conversion efficiency of thin-film silicon solar cells currently prevents them from competin...
Nano-textured interfaces between two media of different refractive indices scatter light. The angula...
Nano-textured interfaces between two media of different refractive indices scatter light. The angula...
We numerically investigate the light-absorption behavior of thin-film silicon for normal-incident li...
For thin silicon solar cells, standard pyramidal textures cannot be used as antireflection structure...
Nano-scale randomly textured front transparent oxides are superposed on micro-scale etched glass sub...
For solar cells based on thin-film microcrystalline (mu c-Si:H) or amorphous silicon (a-Si:H) with a...
We study the light-trapping properties of surface textures generated by a bottom-up approach, which ...
Textures on semiconductor materials, such as monocrystalline and multicrystalline silicon (Si), cons...
We present a modelling study of thin silicon based solar cells endowed with periodic and decoupled f...
Backscattering from nanostructured surfaces greatly diminishes the efficacy of light trapping solar ...
Haase C, Stiebig H. Thin-film silicon solar cells with efficient periodic light trapping texture. Ap...
A surface texture enhances the capacity of a solar cell to absorb incident radiation. In high effici...
Nano-scale randomly textured front transparent oxides are superposed on micro-scale etched glass sub...