English

Absorption Enhancement for Ultra-Thin Solar Fuel Devices with Plasmonic Gratings

Optics 2019-01-03 v1 Applied Physics

Abstract

We present a concept for an ultra-thin solar fuel device with a nanostructured back contact. Using rigorous simulations we show that the nanostructuring significantly increases the absorption in the semiconductor, CuBi2_2O4_4 in this case, by 47\% (5.2~mAcm2^{-2}) through the excitation of plasmonic modes. We are able to attribute the resonances in the device to metal-insulator-metal plasmons coupled to either localised surface plasmon resonances or surface plasmon polaritons. Rounding applied to the metallic corners leads to a blueshift in the resonance wavelength while maintaining absorption enhancement, thus supporting the possibility for a successful realization of the device. For a 2D array, the tolerance of the polarization-dependent absorption enhancement is investigated and compared to a planar structure. The device maintains an absorption enhancement up to incident angles of 75^{\circ}. The study highlights the high potential for plasmonics in ultra-thin opto-electronic devices such as in solar fuel generation.

Keywords

Cite

@article{arxiv.1901.00454,
  title  = {Absorption Enhancement for Ultra-Thin Solar Fuel Devices with Plasmonic Gratings},
  author = {Phillip Manley and Fatwa F. Abdi and Sean Berglund and A. T. M. Nazmul Islam and Sven Burger and Roel van de Krol and Martina Schmid},
  journal= {arXiv preprint arXiv:1901.00454},
  year   = {2019}
}

Comments

4 Figures 18 Pages. Supporting Information Included (7 Figures 11 pages)