Quantifying light-trapping in silicon solar cells and wafers via photoluminescence spectra

We demonstrate the use of photoluminescence spectra measured on silicon wafers and solar cells to quantify light-trapping properties. Photoluminescence spectra are used to calculate the absorptance, from which the optical path-length enhancement factor Z is determined as a function of wavelength. We show that this contactless method yields path-length enhancement values that are consistent with conventional methods based on quantum efficiency measurements on complete cells. We also demonstrate the method on passivated planar and textured silicon wafers, both with and without rear-side reflectors, yielding consistent results. Furthermore, the use of a simple parameterization for the measured wavelength-dependent Z values allows determination of the long-wavelength path-length enhancement factor Z 0 , which is, in principle, independent of wavelength and wafer thickness, in the absence of parasitic absorption in the wafer bulk. This allows a direct comparison of the light-trapping properties of different surface morphologies, demonstrating a powerful, contactless method for measuring and optimizing light-trapping properties at the wafer level. We also demonstrate and discuss the sensitivity of the technique to small changes in temperature, which cause steep changes in the absorption coefficient near the phonon edges in the luminescence spectra.

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Publication Details

Journal
Solar Energy Materials and Solar Cells
Published
2026-09-11
DOI
https://doi.org/10.1016/j.solmat.2026.114698
Primary Topic
Silicon and Solar Cell Technologies
Type
article
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Quantifying light-trapping in silicon solar cells and wafers via photoluminescence spectra

Anh Dinh Bui, Kean Chern Fong, Thorsten Trupke, Marco Ernst et al.
Solar Energy Materials and Solar Cells
Silicon and Solar Cell Technologies
article

Quantifying light-trapping in silicon solar cells and wafers via photoluminescence spectra

Anh Dinh Bui, Kean Chern Fong, Thorsten Trupke, Marco Ernst, Daniel Macdonald, Aneeqa Shaikh
article en

Abstract

We demonstrate the use of photoluminescence spectra measured on silicon wafers and solar cells to quantify light-trapping properties. Photoluminescence spectra are used to calculate the absorptance, from which the optical path-length enhancement factor Z is determined as a function of wavelength. We show that this contactless method yields path-length enhancement values that are consistent with conventional methods based on quantum efficiency measurements on complete cells. We also demonstrate the method on passivated planar and textured silicon wafers, both with and without rear-side reflectors, yielding consistent results. Furthermore, the use of a simple parameterization for the measured wavelength-dependent Z values allows determination of the long-wavelength path-length enhancement factor Z 0 , which is, in principle, independent of wavelength and wafer thickness, in the absence of parasitic absorption in the wafer bulk. This allows a direct comparison of the light-trapping properties of different surface morphologies, demonstrating a powerful, contactless method for measuring and optimizing light-trapping properties at the wafer level. We also demonstrate and discuss the sensitivity of the technique to small changes in temperature, which cause steep changes in the absorption coefficient near the phonon edges in the luminescence spectra.

Solar Energy Materials and Solar CellsVol. 308
Australian National University (AU), UNSW Sydney (AU)
Affordable and clean energy
Openalex Percentile: Top 20%
Silicon and Solar Cell Technologies
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Quantifying light-trapping in silicon solar cells and wafers via photoluminescence spectra — Anh Dinh Bui, Kean Chern Fong, et al. · Solar Energy Materials and Solar Cells (2026) | TGRS Research Map | TGRS