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Supercharging Silicon Solar Cell Performance by Means of Multijunction Concept

2015/02/16 by Ibraheem Almansouri, Anita Ho‐Baillie, Stephen Bremner +1 · 2 citations
Engineering · #Silicon and Solar Cell Technologies #solar cell performance optimization #Chalcogenide Semiconductor Thin Films #Tandem #Stack (abstract data type) #Materials science #Silicon #Quantum efficiency #Optoelectronics #Solar cell #Wafer #Auger effect #Absorption (acoustics) #Substrate (aquarium) #Crystalline silicon #Photovoltaic system #Energy conversion efficiency #Solar cell efficiency #Auger #Computer science #Physics #Electrical engineering #Composite material #Atomic physics

paper · doi:10.1109/jphotov.2015.2395140

openalex publication_date 2015/02/16 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/22

Abstract

This study aims to comprehensively calculate the conversion efficiency limits of multijunction solar cells having crystalline silicon (c-Si) not only as a growth substrate but as the lowermost active subcell as well. The first set of efficiency limits is calculated based on the detailed balance principle, assuming a stepwise absorption profile. Practical limits are then calculated using Si absorption data and Auger recombination parameters from the literature. The Si wafer thickness is also considered in the two-stack tandem design. Performances of the tandems are compared when various Si solar cell technologies are used as the bottom subcells. The impact of external radiative efficiency and external quantum efficiency of the top subcell on the tandem performance is studied. Efficiency limits using state-of-the-art devices, and the effect of varying cell thickness on tandem efficiencies is also reported.

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