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Rare Earth Ions Doped Down-conversion Materials for Third Generation Photovoltaic Solar Cells

机译:用于第三代光伏太阳能电池的稀土离子掺杂下转换材料

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In order to enhance the efficiency of photovoltaic solar cells and overcome their limitations, a matching between solar spectrum and semiconductor band gap is needed using luminescent materials. The following work present in this paper is mainly based on the adjustment of the solar spectrum to the cell bandgap by developing downconverting materials. Down conversion process is exploited to modify the solar spectrum due to a cooperative energy transfer between Tb3+ and two Yb3+rare earth ions in silica-hafnia waveguides. Tb3+/Yb3+ -codoped SiO2-HfO2planar waveguides have been prepared by sol gel route, using a dip-coating deposition on SiO2substrates. The waveguides were obtained with different concentrations and the total amount was [Tb3++Yb3+] = 5%, 7%, 9%, keeping constant the molar ratio [Yb]/[Tb]=4. The comparison between the glass and the glass-ceramic structures demonstrated that the energy transfer is more efficient in glass ceramic since it combines the good optical properties of glasses with the optimal spectroscopic properties of crystals activated by luminescent species. A maximum quantum transfer efficiency of 154.6% was found for the highest rare earth doping concentration.
机译:为了提高光伏太阳能电池的效率并克服其局限性,需要使用发光材料在太阳光谱和半导体带隙之间进行匹配。本文目前进行的以下工作主要是通过开发下转换材料将太阳光谱调整到细胞带隙。由于Tb之间的协同能量传输,利用了下转换过程来修改太阳光谱 3 +和两个Yb 3 氧化硅f波导中的+稀土离子。 b 3 + / Yb 3 +掺杂SiO 2 -氢氟酸 2 通过在SiO上浸涂沉积,通过溶胶凝胶法制备了平面波导 2 基材。获得了不同浓度的波导,总量为[Tb 3 ++ Yb 3 +] = 5%,7%,9%,摩尔比[Yb] / [Tb] = 4保持恒定。玻璃与玻璃-陶瓷结构之间的比较表明,能量转移在玻璃陶瓷中更为有效,因为它结合了玻璃的良好光学特性和由发光物质激活的晶体的最佳光谱特性。对于最高的稀土掺杂浓度,发现最大量子转移效率为154.6%。

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