4.7 Article

Light scattering from black silicon surfaces and its benefits for encapsulated solar cells

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ELSEVIER
DOI: 10.1016/j.solmat.2021.111448

关键词

Black silicon; Scattering; Light trapping; Texture; Optics; Antireflection

资金

  1. EPSRC [EP/M508147/1, EP/S000763/1, EP/R005303/1, EP/L01551X/1]

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The study utilized wavelength and angle resolved scattering (WARS) reflectance measurements on b-Si surfaces to analyze light scattering effects. It was found that large angle scattering occurs across the entire spectrum, especially for shorter wavelengths and taller texture features, resulting in significant light trapping through total internal reflectance (TIR) at various interfaces. This led to a calculated additional boost of up to 0.45% in the photogenerated current of encapsulated black silicon solar cells.
Black silicon (b-Si) has been widely investigated as a potential replacement for more traditional antireflective schemes for silicon solar cells, such as random pyramids, due to its reduced broadband reflectance and improved light-trapping properties. Wavelength and angle resolved scattering (WARS) reflectance measurements provide the means of analysing the amount of light scattered from a textured surface, which can be of interest when considering the amount of light trapped through total internal reflectance (TIR) at various interfaces in an encapsulated photovoltaic module. Here we present and analyse results from WARS measurements on b-Si surfaces fabricated using metal assisted chemical etching (MACE). Large angle scattering is observed for the entire spectrum, increasingly so for shorter incident wavelengths and increasing height of texture features. This is predicted to result in 35-40% of the reflected light being trapped by TIR at the glass-air interface and redirected back onto the sample, when the sample is encapsulated in standard PV module materials. This leads to a calculated additional boost of up to 0.45% in the photogenerated current of an encapsulated black silicon solar cell. This exceeds the calculated 0.21% boost due to TIR predicted for an encapsulated solar cell employing the industry-standard random pyramid texture with a thin film antireflective coating.

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