Laser ablation modelling of aluminium, silver and crystalline silicon for applications in photovoltaic technologies


Autoria(s): Colina Brito, Mónica; Molpeceres Alvarez, Carlos Luis; Morales Furió, Miguel; Allens-Perkins, F.; Guadaño, G.; Ocaña Moreno, Jose Luis
Data(s)

01/07/2011

Resumo

Laser material processing is being extensively used in photovoltaic applications for both the fabrication of thin film modules and the enhancement of the crystalline silicon solar cells. The two temperature model for thermal diffusion was numerically solved in this paper. Laser pulses of 1064, 532 or 248 nm with duration of 35, 26 or 10 ns were considered as the thermal source leading to the material ablation. Considering high irradiance levels (108–109 W cm−2), a total absorption of the energy during the ablation process was assumed in the model. The materials analysed in the simulation were aluminium (Al) and silver (Ag), which are commonly used as metallic electrodes in photovoltaic devices. Moreover, thermal diffusion was also simulated for crystalline silicon (c-Si). A similar trend of temperature as a function of depth and time was found for both metals and c-Si regardless of the employed wavelength. For each material, the ablation depth dependence on laser pulse parameters was determined by means of an ablation criterion. Thus, after the laser pulse, the maximum depth for which the total energy stored in the material is equal to the vaporisation enthalpy was considered as the ablation depth. For all cases, the ablation depth increased with the laser pulse fluence and did not exhibit a clear correlation with the radiation wavelength. Finally, the experimental validation of the simulation results was carried out and the ability of the model with the initial hypothesis of total energy absorption to closely fit experimental results was confirmed.

Formato

application/pdf

Identificador

http://oa.upm.es/16845/

Idioma(s)

eng

Publicador

E.T.S.I. Industriales (UPM)

Relação

http://oa.upm.es/16845/1/INVE_MEM_2012_137794.pdf

http://www.maneyonline.com/doi/abs/10.1179/174329409X397804

info:eu-repo/semantics/altIdentifier/doi/10.1179/174329409X397804

Direitos

http://creativecommons.org/licenses/by-nc-nd/3.0/es/

info:eu-repo/semantics/openAccess

Fonte

Energy Materials, ISSN 1748-9237, 2011-07, Vol. 27, No. 6

Palavras-Chave #Materiales #Física
Tipo

info:eu-repo/semantics/article

Artículo

PeerReviewed