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Optical Modeling of Gold nanoparticles (Au NP) for efficiency improvement of a-Si:H photovoltaic cells

Published online by Cambridge University Press:  19 May 2014

Peiqing Yu
Affiliation:
CEMTHI - CNRS, Site Cyclotron, 3A rue de la Férolerie, 45071 Orléans, France
Jean-Philippe Blondeau
Affiliation:
CEMTHI - CNRS, Site Cyclotron, 3A rue de la Férolerie, 45071 Orléans, France
Caroline Andreazza
Affiliation:
CRMD - CNRS, 1 Rue de la Ferollerie, 45100 Orléans, France
Esidor Ntsoenzok
Affiliation:
CEMTHI - CNRS, Site Cyclotron, 3A rue de la Férolerie, 45071 Orléans, France
Julien Roussel
Affiliation:
PRISME - Université d’Orléans, 8 Rue Léonard de Vinci, 45072 Orléans, France
Perrine Dutheil
Affiliation:
GREMI - Université d’Orléans, 14 Rue d'Issoudun, 45067 Orléans, France
Anne Lise Thomann
Affiliation:
GREMI - Université d’Orléans, 14 Rue d'Issoudun, 45067 Orléans, France
Elyaakoubi Mustapha
Affiliation:
SOLEMS, 3 Rue Léon Blum 91120 Palaiseau, France
Jacque Meot
Affiliation:
SOLEMS, 3 Rue Léon Blum 91120 Palaiseau, France
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Abstract

The efficiency of thin-film solar cells using a-Si:H is limited by the decrease in a-Si:H layer optical path length and its poor light absorption at red and NIR wavelengths. Metal NP such as Au have been shown to increase the absorption in the active material and then cell performances, by exhibiting localized surface plasmon (LSP) resonances. Our work’s goal is to understand NP influence in such cells, to perform an optimal structure by increasing the amount of light absorbed within the cell using NP scattering and luminescence. Modeling based on Mie theory is first carried out using bulk Palik data for Au spheres with various diameters and refractive medium indexes. Using modeling parameters, Au layers were deposited on glass and SnO2 substrates respectively by thermal evaporation in vacuum and sputtering, followed by thermal annealing (200 ∼ 500°C) in order to promote the NP growth. MEB pictures show quasispherical Au NP shape with a mean size of 150nm. This diameter range switches extinction of NP in scattering regime. Annealing temperature (T) strongly affects the NP morphology. Surface coverage decreases and sphericity appears to increase with T. UV-Visible spectroscopy displays distinct LSP resonances around 600nm after annealing with a red shift while T increases.

Type
Articles
Copyright
Copyright © Materials Research Society 2014 

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References

REFERENCES

Hutter, E., Fendler, J.H., Exploitation of localized surface plasmon resonance, Adv. Mater. 16 (2004) 16851706.10.1002/adma.200400271CrossRefGoogle Scholar
Kelly, K.L., Coronado, E., Zhao, L.L., Schatz, G.C., The optical properties of metal nanoparticles: the influence of size, shape, and dielectric environment, J. Phys. Chem. B 107 (2003) 668677.CrossRefGoogle Scholar
Pillai, S., Catchpole, K.R., Trupke, T., Green, M.A., Surface plasmon enhanced silicon solar cells, J. Appl. Phys. 101 (2007) 093105-1–;093105–8.CrossRefGoogle Scholar
Hagglund, C., Zach, M., Petersson, G., Kasemo, B., Electromagnetic coupling of light into a silicon solar cell by nanodisk plasmons, Appl. Phys. Lett. 92 (2008) 053110-1053110 - 3.10.1063/1.2840676CrossRefGoogle Scholar
Westphalen, M., Kreibig, U., Rostalski, J., Luth, H., Meissner, D., Metal cluster enhanced organic solar cells, Sol. Energy Mater. Sol. Cells 61 (2000) 97105.10.1016/S0927-0248(99)00100-2CrossRefGoogle Scholar
Temple, T.L., Mahanama, G.D.K., Reehal, H.S., Bagnall, D.M., Influence of localized surface plasmon excitation in silver nanoparticles on the performance of silicon solar cells, Solar Energy Materials & Solar Cells 93 (2009) 19781985.10.1016/j.solmat.2009.07.014CrossRefGoogle Scholar
Bohren, C.F., Huffman, D.R., Absorption and Scattering of Light by Small Particles, John Wiley & Sons, New York, 1998, pp. 82129 (Chapter 4).CrossRefGoogle Scholar
Palik, E.D., Handbook of Optical Constants of Solids, Academic Press, San Diego, 1985, pp. 350357.Google Scholar