激光辅助制造微光学体积元件,用于提高光伏组件中太阳能电池的光吸收量

G. Peharz, L. Kuna, C. Leiner
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引用次数: 0

摘要

激光生成微光学体元是减少太阳能电池正面金属触点光学阴影的一种很有前途的方法。将飞秒激光束聚焦到封装材料的体积中会引起其光学常数的局部改变。这种微光学元件可用于减少c-Si太阳能电池正面金属化的光学阴影。为了研究体积光学器件的光学性能,制作了由带有金属网格线的玻璃片夹层结构、乙烯-醋酸乙烯(EVA)密封剂和另一片玻璃片组成的测试样品。透射测量表明,金属栅格线的阴影通过在栅格手指上方的EVA块中创建的微光学体积元件大大减少。对这些体积元件的光学特性进行了详细的研究:(i)在几何测量的基础上进行了实验,以及(ii)通过应用光学建模和优化程序进行了理论研究。这使得人们更好地理解了光学体积元件在减少金属网格线在活动单元表面上的光学阴影方面的有效性。此外,还介绍了集成微光学体积元件的光伏微型组件的研究结果。光学模拟和激光束感应电流(LBIC)实验结果表明,采用这种fs-laser结构方法制备EVA材料中的微光学体积元件时,由于网格手指造成的损耗可降低约50%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laser-assisted manufacturing of micro-optical volume elements for enhancing the amount of light absorbed by solar cells in photovoltaic modules
The laser-generation of micro-optical volume elements is a promising approach to decrease the optical shadowing of front side metal contacts of solar cells. Focusing a femtosecond laser beam into the volume of the encapsulation material causes a local modification its optical constants. Suchlike fabricated micro-optical elements can be used to decrease the optical shadowing of the front side metallization of c-Si solar cells. Test samples comprising of a sandwich structure of a glass sheet with metallic grid-lines, an Ethylene-vinyl acetate (EVA) encapsulant and another glass sheet were manufactured in order to investigate the optical performance of the volume optics. Transmission measurements show that the shadowing of the metalling grid-lines is substantially decreased by the micro-optical volume elements created in the EVA bulk right above the grid-fingers. A detailed investigation of the optical properties of these volume elements was performed: (i) experimentally on the basis of goniometric measurements, as well as (ii) theoretically by applying optical modelling and optimization procedures. This resulted in a better understanding of the effectiveness of the optical volume elements in decreasing the optical shadowing of metal grid lines on the active cell surfaces. Moreover, results of photovoltaic mini-modules with incorporated micro-optical volume elements are presented. Results of optical simulation and Laser Beam Induced Current (LBIC) experiments show that the losses due to the grid fingers can be reduced by about 50%, when using this fs-laser structuring approach for the fabrication of micro-optical volume elements in the EVA material.
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