Paper
23 February 2017 Broadband absorption enhancement in amorphous Si solar cells using metal gratings and surface texturing
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Abstract
The efficiencies of thin film amorphous silicon (a-Si) solar cells are restricted by the small thickness required for efficient carrier collection. This thickness limitations result in poor light absorption. In this work, broadband absorption enhancement is theoretically achieved in a-Si solar cells by using nanostructured back electrode along with surface texturing. The back electrode is formed of Au nanogratings and the surface texturing consists of Si nanocones. The results were then compared to random texturing surfaces. Three dimensional finite difference time domain (FDTD) simulations are used to design and optimize the structure. The Au nanogratings achieved absorption enhancement in the long wavelengths due to sunlight coupling to surface plasmon polaritons (SPP) modes. High absorption enhancement was achieved at short wavelengths due to the decreased reflection and enhanced scattering inside the a-Si absorbing layer. Optimizations have been performed to obtain the optimal geometrical parameters for both the nanogratings and the periodic texturing. In addition, an enhancement factor (i.e. absorbed power in nanostructured device/absorbed power in reference device) was calculated to evaluate the enhancement obtained due to the incorporation of each nanostructure.
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Sara Magdi and Mohamed A. Swillam "Broadband absorption enhancement in amorphous Si solar cells using metal gratings and surface texturing", Proc. SPIE 10099, Physics, Simulation, and Photonic Engineering of Photovoltaic Devices VI, 1009912 (23 February 2017); https://doi.org/10.1117/12.2253326
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Cited by 2 scholarly publications.
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KEYWORDS
Amorphous silicon

Absorption

Solar cells

Gold

Silicon

Finite-difference time-domain method

Nanostructures

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