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Optical Analysis of a ZnO/Cu2O Subcell in a Silicon-Based Tandem Heterojunction Solar Cell

机译:硅基串联异质结太阳能电池中ZnO / Cu2O子电池的光学分析

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Research on silicon-based tandem heterojunction solar cells (STHSC) incorporating metal oxides is one of the main directions for development of high-efficiency solar cells. In this work, the optical characteristics of a STHSC consisting of a ZnO/Cu2O subcell on top of a silicon-based subcell were studied by optical modelling. Cu2O is a direct-gap p-type semiconductor which is attractive for application in solar cells due to its high absorptance of ultra-violet and visible light, nontoxicity, and low-cost producibility. Highly Al-doped ZnO and undoped Cu2O thin films were prepared on quartz substrates by magnetron sputter deposition. Thermal annealing of the Cu2O layer at 900°C enhances the electrical properties and reduces optical absorption, presumably as a result of increased grain size. Hall effect measurements show that the majority carrier (hole) mobility increases from 10 to 50 cm2/V×s and the resistivity decreases from 560 to 200 Ω×cm after annealing. A Cu2O absorber layer of 2 μm thickness will generate about 10 mA/cm2 of photocurrent under AM1.5G illumination. The optical analysis of the STHSC involved calculating the spectral curves for absorptance, transmittance, and reflectance for different thicknesses of the thin film layers constituting the ZnO/Cu2O subcell. The complex refractive indices of the thin films were derived from spectroscopic ellipsometry measurements and implemented in the simulation model. The lowest reflectance and highest transmittance for the ZnO/Cu2O subcell are obtained for a thickness of approximately 80 nm for both the top and bottom AZO layers. The SiNx anti-reflection coating for the c-Si bottom subcell must be optimized to accommodate the shift of the photon spectrum towards longer wavelengths. By increasing the thickness of the SiNx layer from 80 nm to 120 nm, the total reflectance for the STHSC device is reduced from 12.7% to 9.7%.
机译:结合金属氧化物的硅基串联异质结太阳能电池(STHSC)的研究是高效太阳能电池发展的主要方向之一。在这项工作中,通过光学建模研究了由硅基子电池顶部的ZnO / Cu2O子电池组成的STHSC的光学特性。 Cu 2 O是一种直接能隙的p型半导体,由于其对紫外线和可见光的高吸收率,无毒和低成本的生产性,因此吸引了太阳能电池中的应用。通过磁控溅射沉积在石英衬底上制备了高掺杂铝的ZnO薄膜和未掺杂的Cu2O薄膜。 Cu2O层在900°C的温度下进行热退火可增强电性能并降低光吸收,这大概是由于晶粒尺寸增大所致。霍尔效应测量表明,退火后,多数载流子(空穴)迁移率从10 cm2 / V×s增加到50 cm2 / V×s,电阻率从560Ω×cm减小到200Ω×cm。在AM1.5G照射下,厚度为2μm的Cu2O吸收层将产生约10 mA / cm2的光电流。 STHSC的光学分析涉及计算构成ZnO / Cu2O子电池的不同厚度的薄膜层的吸收率,透射率和反射率的光谱曲线。薄膜的复折射率是由椭圆偏振光谱测量得出的,并在模拟模型中实现。对于顶部和底部AZO层,对于ZnO / Cu2O子电池,最低反射率和最高透射率的厚度约为80 nm。必须优化用于c-Si底部子电池的SiNx减反射涂层,以适应光子光谱向更长波长的移动。通过将SiNx层的厚度从80 nm增加到120 nm,STHSC器件的总反射率从12.7%降低到9.7%。

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