Goldman Daniel A, Murray Joseph, Munday Jeremy N
Opt Express. 2016 May 16;24(10):A925-34. doi: 10.1364/OE.24.00A925.
We describe high efficiency thin-film InP solar cells that utilize a periodic array of TiO nanocylinders. These nanophotonic resonators are found to reduce the solar-weighted average reflectivity of an InP solar cell to ~1.3%, outperforming the best double-layer antireflection coatings. The coupling between Mie scattering resonances and thin-film interference effects accurately describes the optical enhancement provided by the nanocylinders. The spectrally resolved reflectivity and J-V characteristics of the device under AM1.5G illumination are determined via coupled optical and electrical simulations, resulting in a predicted power conversion efficiency > 23%. We conclude that the nanostructured coating reduces reflection without negatively affecting the electronic properties of the InP solar cell by separating the nanostructured optical components from the active layer of the device.
我们描述了一种利用TiO纳米圆柱体周期性阵列的高效薄膜InP太阳能电池。发现这些纳米光子谐振器可将InP太阳能电池的太阳加权平均反射率降低至约1.3%,优于最佳的双层抗反射涂层。米氏散射共振与薄膜干涉效应之间的耦合准确地描述了纳米圆柱体提供的光学增强作用。通过耦合光学和电学模拟确定了该器件在AM1.5G光照下的光谱分辨反射率和J-V特性,预测功率转换效率>23%。我们得出结论,通过将纳米结构的光学组件与器件的有源层分离,这种纳米结构涂层可减少反射,而不会对InP太阳能电池的电子特性产生负面影响。