Jiménez-Solano Alberto, Delgado-Sánchez José-Maria, Calvo Mauricio E, Miranda-Muñoz José M, Lozano Gabriel, Sancho Diego, Sánchez-Cortezón Emilio, Míguez Hernán
Multifunctional Optical Materials Group Instituto de Ciencia de Materiales de Sevilla Consejo Superior de Investigaciones Científicas-Universidad de Sevilla (US-CSIC) Américo Vespucio 49 41092 Sevilla Spain.
Abengoa Solar New Technologies S.A., Parque Empresarial Soland Ctra. A472 km6 41800 Sanlucar la Mayor Sevilla Spain.
Prog Photovolt. 2015 Dec;23(12):1785-1792. doi: 10.1002/pip.2621. Epub 2015 Apr 23.
Herein, we present a prototype of a photovoltaic module that combines a luminescent solar concentrator integrating one-dimensional photonic crystals and in-plane CuInGaSe (CIGS) solar cells. Highly uniform and wide-area nanostructured multilayers with photonic crystal properties were deposited by a cost-efficient and scalable liquid processing amenable to large-scale fabrication. Their role is to both maximize light absorption in the targeted spectral range, determined by the fluorophore employed, and minimize losses caused by emission at angles within the escape cone of the planar concentrator. From a structural perspective, the porous nature of the layers facilitates the integration with the thermoplastic polymers typically used to encapsulate and seal these modules. Judicious design of the module geometry, as well as of the optical properties of the dielectric mirrors employed, allows optimizing light guiding and hence photovoltaic performance while preserving a great deal of transparency. Optimized in-plane designs like the one herein proposed are of relevance for building integrated photovoltaics, as ease of fabrication, long-term stability and improved performance are simultaneously achieved. © 2015 The Authors. published by John Wiley & Sons Ltd.
在此,我们展示了一种光伏模块的原型,该模块结合了集成一维光子晶体的发光太阳能聚光器和平面铜铟镓硒(CIGS)太阳能电池。通过适合大规模制造的具有成本效益且可扩展的液体处理工艺,沉积了具有光子晶体特性的高度均匀且大面积的纳米结构多层膜。它们的作用是在由所使用的荧光团决定的目标光谱范围内最大化光吸收,并最小化由平面聚光器逃逸锥内角度的发射所引起的损失。从结构角度来看,这些层的多孔性质便于与通常用于封装和密封这些模块的热塑性聚合物集成。对模块几何形状以及所使用的介质镜的光学特性进行明智的设计,能够在保持大量透明度的同时优化光导,从而提高光伏性能。像本文所提出的这种优化平面设计对于建筑集成光伏具有重要意义,因为可以同时实现易于制造、长期稳定性和性能提升。© 2015作者。由约翰·威利父子有限公司出版。