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Natural evolution inspired design of light trapping structure in thin film organic solar cells

机译:自然进化启发了薄膜有机太阳能电池中光捕获结构的设计

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Light trapping has been developed to effectively enhance the efficiency of the thin film solar cell by extending the path-length for light interacting with the active materials. Searching for optimal light trapping design requires a delicate balance among all the competing physical processes, including light refraction, reflection, and absorption. The existing design methods mainly depend on engineers' intuition to predefine the topology of the light-trapping structure. However, these methods are not capable of handling the topological variation in reaching the optimal design. In this work, a systematic approach based on Genetic Algorithm is introduced to design the scattering pattern for effective light trapping Inspired by natural evolution, this method can gradually improve the performance of light trapping structure through iterative procedures, producing the most favorable structure with minimized reflection and substantial enhancement in light absorption. Both slot waveguide based solar cell and a more realistic organic solar with a scattering layer consisting of nano-scale patterned front layer is optimized to maximize absorption by strongly coupling incident sun light into the localized photonic modes supported by the multilayer system. Rigorous coupled wave analysis (RCWA) is implemented to evaluate the absorbance. The optimized slot waveguide cell achieves a broadband absorption efficiency of 48.1% and more than 3-fold increase over the Yablonovitch limit and the optimized realistic organic cell exhibits nearly 50% average absorbance over the solar spectrum with short circuit current density five times larger than the control case using planar ITO layer.
机译:通过延长光与活性物质相互作用的光程长度,已经开发出光捕获来有效地提高薄膜太阳能电池的效率。要寻求最佳的光捕获设计,需要在所有竞争的物理过程之间实现微妙的平衡,包括光的折射,反射和吸收。现有的设计方法主要依靠工程师的直觉来预定义光阱结构的拓扑。但是,这些方法不能在达到最佳设计时处理拓扑变化。在这项工作中,引入了一种基于遗传算法的系统方法来设计有效散射的散射图案,该散射图案是受自然进化启发的,该方法可以通过迭代过程逐步提高陷光结构的性能,从而产生反射率最小的最有利结构。并大大增强了光吸收。基于缝隙波导的太阳能电池和具有由纳米级图案化前层组成的散射层的更现实的有机太阳能均经过优化,可通过将入射太阳光强耦合到多层系统支持的局部光子模中来最大程度地吸收。严格耦合波分析(RCWA)用于评估吸光度。经过优化的缝隙波导单元实现了48.1%的宽带吸收效率,并且比Yablonovitch极限提高了3倍以上,并且经过优化的实际有机单元在太阳光谱范围内的平均吸收率接近50%,而短路电流密度则是后者的五倍。控制案例使用平面ITO层。

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