Mellor Alexander, Hauser Hubert, Wellens Christine, Benick Jan, Eisenlohr Johannes, Peters Marius, Guttowski Aron, Tobías Ignacio, Martí Antonio, Luque Antonio, Bläsi Benedikt
Fraunhofer Institute for Solar Energy Systems ISE, Heidenhofstr 2, 79110 Freiburg, Germany.
Opt Express. 2013 Mar 11;21 Suppl 2:A295-304. doi: 10.1364/OE.21.00A295.
Light trapping is becoming of increasing importance in crystalline silicon solar cells as thinner wafers are used to reduce costs. In this work, we report on light trapping by rear-side diffraction gratings produced by nano-imprint lithography using interference lithography as the mastering technology. Gratings fabricated on crystalline silicon wafers are shown to provide significant absorption enhancements. Through a combination of optical measurement and simulation, it is shown that the crossed grating provides better absorption enhancement than the linear grating, and that the parasitic reflector absorption is reduced by planarizing the rear reflector, leading to an increase in the useful absorption in the silicon. Finally, electro-optical simulations are performed of solar cells employing the fabricated grating structures to estimate efficiency enhancement potential.
随着使用更薄的硅片来降低成本,光捕获在晶体硅太阳能电池中变得越来越重要。在这项工作中,我们报道了通过纳米压印光刻技术利用干涉光刻作为母版技术在背面制作衍射光栅来实现光捕获。在晶体硅片上制作的光栅显示出能显著提高光吸收。通过光学测量和模拟相结合,结果表明交叉光栅比线性光栅能提供更好的光吸收增强效果,并且通过使后反射器平面化可减少寄生反射器吸收,从而增加硅中的有用吸收。最后,对采用所制作光栅结构的太阳能电池进行电光模拟,以估计效率提升潜力。