标题: | 利用微透镜结构提升可挠式太阳能波导电池之特性 Microlens Structures for Flexible Waveguiding Solar Photovoltaics |
作者: | 庄睿纲 Chuang, Jui-Kang 陈方中 Chen, Fang-Chung 光电系统研究所 |
关键字: | 可挠式太阳能波导电池;微透镜结构;Flexible waveguiding solar photovoltaics;Microlens structures |
公开日期: | 2012 |
摘要: | 本研究中,主要在可挠式太阳能波导模组中,加上微透镜结构以提升效率。我们发现在波导模组上加入微透镜结构,并使光线聚焦在TiO_2散射层底部 ,而导光效率则有明显的提升,搭配微透镜结构的可挠式太阳能波导模组最终效率由1.67%提升至1.92%。此外,经由量测并计算侧面穿透光损失率和顶面穿透光损失率,可以证实表面微透镜结构不单只能增加元件的导光效率,也可有效抑制光从其它非电池吸收面的穿透光损失;我们推论元件效率因此而提升,我们并使用光学软体Tracepro 来作模拟验证并与实验结果一并讨论。 In this study, we describe flexibility waveguiding photovoltaics (FWPVs) that exhibit higher optical efficiencies with microlens structure than flat-plane. Optical microstructure that increase the light harvesting ability of the FWPVs can be fabricated readily, through soft lithography, on the top surface of the PDMS waveguide. Our optimized microlens structure displayed power conversion efficiency (PCE) of greater than 1.92%. For a waveguiding solar moldule, the major photon losses arise from the top surfaces and edges. According to the measurement of optical loss from the edge in our waveguiding solar module, we found that the focal length affected the intensity significantly; the optimal value of focal length was 5.0 mm. On the other hand, measurement of the top surface losses suggested that degree of photon loss increased upon increasing the interval between the lens. In the end, we used a commercial ray-tracing software to simulate the experimental results. And simulation has emerged recently as an important aid to prove our speculation. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#GT070058018 http://hdl.handle.net/11536/72039 |
显示于类别: | Thesis |