Wave chaos enhanced light trapping in optically thin solar cells

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Abstract

Enhancing the energy output of solar cells increases their competitiveness as a source of energy. Producing thinner solar cells is attractive, but a thin absorbing layer demands excellent light management in order to keep transmission- and reflection-related losses of incident photons at a minimum. We maximize absorption by trapping light rays to make the mean average path length in the absorber as long as possible. In chaotic scattering systems, there are ray trajectories with very long lifetimes. In this paper, we investigate the scattering dynamics of waves in a model system using principles from the field of quantum chaotic scattering. We quantitatively find that the transition from regular to chaotic scattering dynamics correlates with the enhancement of the absorption cross section and propose the use of an autocorrelation function to assess the average path length of rays as a possible way to verify the light-trapping efficiency experimentally.

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CITATION STYLE

APA

Seim, E., Kohler, A., Lukacs, R., Brandsrud, M. A., Marstein, E. S., Olsen, E., & Blümel, R. (2021). Wave chaos enhanced light trapping in optically thin solar cells. Chaos, 31(6). https://doi.org/10.1063/5.0049330

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