A simple method is developed to determine the light trapping properties of arbitrarily textured solar cells with high accuracy. The method allows for determining the quantum efficiency and short circuit current density of thin film solar cells prepared on randomly nanotextured surfaces. The light trapping of the randomly textured solar cell is described by the area weighted superposition of periodically textured solar cells. The necessary input parameters for the calculations are determined by analyzing the randomly textured surfaces of the solar cells using atomic force microscopy and image processing. The analysis of the atomic force microscope images and the calculation of the quantum efficiency and short circuit current can be determine...
In this contribution, we use a rigorous electro-optical model to study randomly rough crystalline si...
A theoretical study of randomly rough interfaces to obtain light trapping in thin-film silicon solar...
In order to simultaneously decrease the production costs of thin film silicon solar cells and obtain...
The influence of film formation on light-trapping properties of silicon thin-film solar cells prepar...
Random structures are typically used for light trapping in thin-film silicon solar cells. However, t...
ABSTRACT: In this work, we use a rigorous electro-optical model to study silicon solar cells with ra...
Light trapping is of very high importance for silicon photovoltaics (PV) and especially for thin-fil...
The concept of photonic random textures for application as a light-trapping scheme in thin-film sola...
Haase C, Stiebig H. Thin-film silicon solar cells with efficient periodic light trapping texture. Ap...
This chapter sensitizes the reader to the peculiarities of randomly textured surfaces in the context...
We investigate light-scattering textures for the application in thin-film solar cells which consist ...
We present a systematic simulation study on the impact of disorder in thin film silicon solar cells ...
Light trapping in thin-film silicon solar cell arising from randomly textured ZnO front contact laye...
Thin-film silicon solar cells make use of relatively thin layers of active material compared to wafe...
Random structures are typically used for light trapping in thin-film silicon solar cells. However, t...
In this contribution, we use a rigorous electro-optical model to study randomly rough crystalline si...
A theoretical study of randomly rough interfaces to obtain light trapping in thin-film silicon solar...
In order to simultaneously decrease the production costs of thin film silicon solar cells and obtain...
The influence of film formation on light-trapping properties of silicon thin-film solar cells prepar...
Random structures are typically used for light trapping in thin-film silicon solar cells. However, t...
ABSTRACT: In this work, we use a rigorous electro-optical model to study silicon solar cells with ra...
Light trapping is of very high importance for silicon photovoltaics (PV) and especially for thin-fil...
The concept of photonic random textures for application as a light-trapping scheme in thin-film sola...
Haase C, Stiebig H. Thin-film silicon solar cells with efficient periodic light trapping texture. Ap...
This chapter sensitizes the reader to the peculiarities of randomly textured surfaces in the context...
We investigate light-scattering textures for the application in thin-film solar cells which consist ...
We present a systematic simulation study on the impact of disorder in thin film silicon solar cells ...
Light trapping in thin-film silicon solar cell arising from randomly textured ZnO front contact laye...
Thin-film silicon solar cells make use of relatively thin layers of active material compared to wafe...
Random structures are typically used for light trapping in thin-film silicon solar cells. However, t...
In this contribution, we use a rigorous electro-optical model to study randomly rough crystalline si...
A theoretical study of randomly rough interfaces to obtain light trapping in thin-film silicon solar...
In order to simultaneously decrease the production costs of thin film silicon solar cells and obtain...