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Optimized biomimetic antireflection nanostructure for photovoltaic applications

机译:用于光伏应用的优化生物纤维抗反射纳米结构

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Minimizing surface reflection loss is critical when designing high efficiency solar cells. In recent years, biomimetic antireflection nanostructures (such as moth-eye structures), with their extraordinary broadband and omnidirectional antireflection properties, have caught much attention. Single side biomimetic antireflection (AR) coatings show good performance in suppressing broadband reflection between air and glass interface. However, reflection from the interface between absorption layer and transparent window layer still remains. In this study, we proposed a double-side gradient-index nanostructure, and examined its reflection spectrum in comparison with different biomimetic nanostructures using a finite-difference time-domain (FDTD) simulation and effective medium theory (EMT). In order to minimize surface reflection, all abrupt interfaces were replaced by gradientindex biomimetic nanostructures, including air/glass interface and absorber/glass interface. Monolayer of silica spheres serve as double-side gradient-index nanostructures, partially immersed into photoabsorbing material. Spheres with diameter smaller than incoming light wavelength show excellent antireflection properties. From simulation results, in normal incidence, average reflection rate of optimized AR coating structure was lower to around 5% compared to originally above 25% within visible spectrum region (350nm – 850nm). Details of how to apply such biomimetic nanostructures in thin film solar cells were also discussed.
机译:在设计高效太阳能电池时,最小化表面反射损耗至关重要。近年来,仿生抗反射纳米结构(如蛾眼结构),具有其非凡的宽带和全向抗反射性能,引起了很多关注。单侧仿生抗反射(AR)涂层在抑制空气和玻璃界面之间的宽带反射方面具有良好的性能。然而,仍然存在来自吸收层和透明窗口层之间的界面的反射。在这项研究中,我们提出了一种双面梯度指数纳米结构,并使用有限差分时间域(FDTD)模拟和有效介质理论(EMT)相比,与不同的仿生纳米结构相比,检查了其反射谱。为了最小化表面反射,所有突然的界面被毕素吲哚染色型纳米结构取代,包括空气/玻璃界面和吸收器/玻璃界面。二氧化硅球体的单层用作双侧梯度指数纳米结构,部分浸入光吸收材料中。直径小于输入光波长的球体显示出优异的抗反射性能。从仿真结果,在正常发病率,优化的Ar涂层结构的平均反射率与最初高于25%以上的可见光谱区域(350nm-850nm)的平均反射率降至约5%。还讨论了如何在薄膜太阳能电池中应用这种仿生纳米结构的细节。

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