4.8 Article

Dielectric Scattering Patterns for Efficient Light Trapping in Thin-Film Solar Cells

Journal

NANO LETTERS
Volume 15, Issue 8, Pages 4846-4852

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nl5045583

Keywords

Thin film solar cells; light trapping; resonant nanostructures; nanophotonics; geometrical resonances

Funding

  1. NWO
  2. European Research Council
  3. NanoNextNL, a technology program of the Dutch Ministry of Economy Affairs

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We demonstrate an effective light trapping geometry for thin-film solar cells that is composed of dielectric light scattering nanocavities at the interface between the metal back contact and the semiconductor absorber layer. The geometry is based on resonant Mie scattering. It avoids the Ohmic losses found in metallic (plasmonic) nanopatterns, and the dielectric scatterers are well compatible with nearly all types of thin-film solar cells, including cells produced using high temperature processes. The external quantum efficiency of thin-film a-Si:H solar cells grown on top of a nanopatterned Al-doped ZnO, made using soft imprint lithography, is strongly enhanced in the 550-800 nm spectral band by the dielectric nanoscatterers. Numerical simulations are in good agreement with experimental data and show that resonant light scattering from both the AZO nanostructures and the embedded Si nanostructures are important. The results are generic and can be applied on nearly all thin-film solar cells.

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