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Efficiency enhancement of silicon solar cells covered by GeO2-PbO glasses doped with Eu3+ and TiO2 nanoparticles

DOI:10.1016/j.jlumin.2020.117244 期刊:Journal of Luminescence 出版年份:2020 更新时间:2025-09-23 15:19:57
摘要: An objective of the solar industry is to improve the efficiency of the light-electricity conversion process of photovoltaic solar cells. An alternative to achieve this purpose is to manage the solar spectrum that is absorbed by the solar cell in order to match it with the solar cell responsivity. It can be done, for example through the downconversion process, covering the solar cell with photonic materials that can convert photons of the UV region to photons with energy close to the band gap energy of the solar cell. This process can be observed, for example, through the UV excitation of transparent glasses with low phonon energy hosting luminescent ions with energy levels in the VIS region. The luminescence from these energetic levels can be improved siting the luminescent ions in places with low symmetry. In the present study the optical response to the solar spectrum of GeO2-PbO glasses containing Eu3t ions and titanium dioxide nanoparticles was explored to enhance the efficiency of polycrystalline silicon solar cells. Results revealed a maximum efficiency enhancement of 15.92% for the silicon solar cell covered with GeO2-PbO glass doped with 1% of Eu2O3 and 0.5% of TiO2 heat treated for 24 h. This efficiency enhancement was attributed to the location of the Eu3t ions in sites of low symmetry of TiO2 nanoparticles.
作者: R.M. Gunji,G.R.S. Mattos,C.D.S. Bordon,L.A. G?omez-Malag?on,L.R.P. Kassab
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To improve the efficiency of the light-electricity conversion process of photovoltaic solar cells by managing the solar spectrum absorbed by the solar cell to match it with the solar cell responsivity through the downconversion process.

The study demonstrated that covering silicon solar cells with GeO2-PbO glasses doped with Eu3t and TiO2 nanoparticles can significantly enhance their efficiency, with a maximum enhancement of 15.92% observed for specific doping and heat treatment conditions. This enhancement is attributed to the positioning of Eu3t ions in low symmetry sites within the TiO2 nanoparticles.

The study focuses on the enhancement of solar cell efficiency through the downconversion process using specific glass compositions and doping. The applicability of these findings to other types of solar cells or under different environmental conditions was not explored.

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