TY - GEN
T1 - Path to 50% Silicon Single Junction Solar Cells
AU - Honsberg, Christiana B.
AU - Sellers, Ian
AU - Goodnick, Stephen
AU - Bowden, Stuart
N1 - Publisher Copyright:
© 2025 SPIE.
PY - 2025
Y1 - 2025
N2 - Achieving 50% efficient solar cells is typically considered well outside the possibility for a single-junction silicon photovoltaic solar cell, particularly a commercial silicon solar cell. The goal of this paper is to show that a combination of innovations can put silicon solar cells on a path to 50% efficiency using physical processes that have been physically observed but not optimized in structures consistent with commercial solar cells. A central feature of an ultra-high efficiency solar cell, and a critical challenge in making such devices, is the need for very thin solar cells below 10 microns. An ultra-thin solar cell allows the incorporation of other innovations, giving efficiencies approaching 50% using conventional physics and structures. Ultra-thin solar cells, in combination with other physical processes, such as nanostructured light trapping, allow new processes and further increase possible efficiencies. Overall, innovations include limited acceptance angles, low concentration, and effective light trapping, leading to an efficiency potential of 36% without sacrificing yearly energy generation. Adding the extraction of carriers at the quasi-Fermi level rather than the Fermi level and two-carrier generation gives an efficiency of up to 51%.
AB - Achieving 50% efficient solar cells is typically considered well outside the possibility for a single-junction silicon photovoltaic solar cell, particularly a commercial silicon solar cell. The goal of this paper is to show that a combination of innovations can put silicon solar cells on a path to 50% efficiency using physical processes that have been physically observed but not optimized in structures consistent with commercial solar cells. A central feature of an ultra-high efficiency solar cell, and a critical challenge in making such devices, is the need for very thin solar cells below 10 microns. An ultra-thin solar cell allows the incorporation of other innovations, giving efficiencies approaching 50% using conventional physics and structures. Ultra-thin solar cells, in combination with other physical processes, such as nanostructured light trapping, allow new processes and further increase possible efficiencies. Overall, innovations include limited acceptance angles, low concentration, and effective light trapping, leading to an efficiency potential of 36% without sacrificing yearly energy generation. Adding the extraction of carriers at the quasi-Fermi level rather than the Fermi level and two-carrier generation gives an efficiency of up to 51%.
UR - https://www.scopus.com/pages/publications/105005940112
U2 - 10.1117/12.3052679
DO - 10.1117/12.3052679
M3 - Conference contribution
AN - SCOPUS:105005940112
T3 - Proceedings of SPIE - The International Society for Optical Engineering
BT - Physics, Simulation, and Photonic Engineering of Photovoltaic Devices XIV
A2 - Freundlich, Alexandre
A2 - Hinzer, Karin
A2 - Sellers, Ian R.
A2 - Helmers, Henning
PB - SPIE
T2 - Physics, Simulation, and Photonic Engineering of Photovoltaic Devices XIV 2025
Y2 - 28 January 2025 through 30 January 2025
ER -