We discuss here optical losses in silicon heterojunction solar cells and strategies to minimize them. Optical losses originate from most non-crystalline-silicon layers involved in the solar cell. A breakdown for typical values is shown evidencing that suppressing absorption from the front amorphous silicon layers gives the largest gain. Other losses are interdependent, and reducing absorption from one layer in the infrared part of the spectrum boosts absorption from the other layer. The use of nanocrystalline silicon layers in lieu of amorphous silicon enables a reduction of the absorption at a given thickness but thicker layers are seen to be necessary, reducing the eventual optical gain in optimized devices. For the front transparent cond...
In this work, we discuss the results of a 2-dimensional numerical device simulation study concerning...
Silicon Heterojunction has become a promising technology to substitute passivated emitter and rear c...
Silicon heterojunction solar cells use crystalline silicon (c-Si) wafers as optical absorbers and em...
Silicon heterojunction (SHJ) solar cells, the transparent conductive oxide (TCO) layers used are des...
Light trapping plays an important role to achieve high short circuit current density (Jsc) and high ...
To overcome the worldwide challenges of climate change, photovoltaics is foreseen to play a signific...
We demonstrate silicon heterojunction solar cells with microscale effectively transparent front cont...
Perovskite silicon tandem solar cells are attractive for their potential for boosting cell efficien...
The current losses due to parasitic absorption in the indium tin oxide (ITO) and amorphous silicon (...
In this article, we investigate the effect of prolonged light exposure on silicon heterojunction sol...
To improve the infrared (IR) response, a high-refractive-index intrinsic amorphous silicon (a-Si:H) ...
This Study addresses the potential of different approaches to improve the generated current in silic...
Perovskite/silicon tandem solar cells are attractive for their potential for boosting cell efficienc...
We analyze the optical losses that occur in interdigitated back-contacted amorphous/crystalline sili...
Herein, an optical loss analysis of the recently introduced silicon carbide–based transparent passiv...
In this work, we discuss the results of a 2-dimensional numerical device simulation study concerning...
Silicon Heterojunction has become a promising technology to substitute passivated emitter and rear c...
Silicon heterojunction solar cells use crystalline silicon (c-Si) wafers as optical absorbers and em...
Silicon heterojunction (SHJ) solar cells, the transparent conductive oxide (TCO) layers used are des...
Light trapping plays an important role to achieve high short circuit current density (Jsc) and high ...
To overcome the worldwide challenges of climate change, photovoltaics is foreseen to play a signific...
We demonstrate silicon heterojunction solar cells with microscale effectively transparent front cont...
Perovskite silicon tandem solar cells are attractive for their potential for boosting cell efficien...
The current losses due to parasitic absorption in the indium tin oxide (ITO) and amorphous silicon (...
In this article, we investigate the effect of prolonged light exposure on silicon heterojunction sol...
To improve the infrared (IR) response, a high-refractive-index intrinsic amorphous silicon (a-Si:H) ...
This Study addresses the potential of different approaches to improve the generated current in silic...
Perovskite/silicon tandem solar cells are attractive for their potential for boosting cell efficienc...
We analyze the optical losses that occur in interdigitated back-contacted amorphous/crystalline sili...
Herein, an optical loss analysis of the recently introduced silicon carbide–based transparent passiv...
In this work, we discuss the results of a 2-dimensional numerical device simulation study concerning...
Silicon Heterojunction has become a promising technology to substitute passivated emitter and rear c...
Silicon heterojunction solar cells use crystalline silicon (c-Si) wafers as optical absorbers and em...