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Optimization of antireflection coating design for multi-junction solar cells and concentrator systems

机译:多结太阳能电池和聚光器系统抗反射涂层设计的优化

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Photovoltaic solar cells are a route towards local, environmentally benign, sustainable and affordable energy solutions. Antireflection coatings are necessary to input a high percentage of available light for photovoltaic conversion, and therefore have been widely exploited for silicon solar cells. Multi-junction Ⅲ-V semiconductor solar cells have achieved the highest efficiencies of any photovoltaic technology, yielding up to 40% in the laboratory and 37% in commercial devices under varying levels of concentrated light. These devices benefit from a wide absorption spectrum (300-1800 nm), but this also introduces significant challenges for antireflection coating design. Each sub-cell junction is electrically connected in series, limiting the overall device photocurrent by the lowest current-producing junction. Therefore, antireflection coating optimization must maximize the current from the limiting sub-cells at the expense of the others. Solar concentration, necessary for economical terrestrial deployment of multi-junction solar cells, introduces an angular-dependent irradiance spectrum. Antireflection coatings are optimized for both direct normal incidence in air and angular incidence in an Opel Mk-I concentrator, resulting in as little as 1 -2% loss in photocurrent as compared to an ideal zero-reflectance solar cell, showing a similar performance to antireflection coatings on silicon solar cells. A transparent conductive oxide layer has also been considered to replace the metallic-grid front electrode and for inclusion as part of a multi-layer antireflection coating. Optimization of the solar cell, antireflection coating, and concentrator system should be considered simultaneously to enable overall optimal device performance.
机译:光伏太阳能电池是通往本地,环境友好,可持续和负担得起的能源解决方案的途径。防反射涂层是输入大量可用光以进行光伏转换所必需的,因此已被广泛用于硅太阳能电池。在不同的聚光水平下,多结Ⅲ-V半导体太阳能电池都达到了任何光伏技术中最高的效率,在实验室中的产率高达40%,在商业设备中的产率高达37%。这些设备受益于宽的吸收光谱(300-1800 nm),但这也给防反射涂层设计带来了重大挑战。每个子电池结均串联电连接,从而通过最低的电流产生结来限制整个设备的光电流。因此,抗反射涂层的优化必须以限制其他子电池为代价,使来自限制子电池的电流最大化。对于多结太阳能电池的经济地面部署而言,太阳集中是必要的,它会引入与角度相关的辐照光谱。减反射涂层针对空气中的直接法向入射和欧宝Mk-I集中器中的角入射进行了优化,与理想的零反射太阳能电池相比,光电流损失小至-2%,其性能与理想的零反射太阳能电池相似。硅太阳能电池上的抗反射涂层。透明导电氧化物层也被认为可以代替金属格栅前电极,并且可以作为多层抗反射涂层的一部分包含在内。应该同时考虑太阳能电池,减反射涂层和聚光器系统的优化,以实现整体最佳的器件性能。

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