论文标题

对串联太阳能电池的超薄膜顶部吸收器实施强烈干扰

Implementing strong interference in ultrathin film top absorbers for tandem solar cells

论文作者

Piekner, Yifat, Dotan, Hen, Tsyganok, Anton, Malviya, Kirtiman Deo, Grave, Daniel A., Kfir, Ofer, Rothschild, Avner

论文摘要

已经证明,在金属背部反射器上对超薄膜半导体吸收器的强烈干扰已被证明可以提高太阳能电池材料的光收集效率。但是,金属背反射器不适合串联细胞配置,因为光子不能通过设备传输。在这里,我们介绍了一种通过使用分布式Bragg反射器(DBR)在串联细胞配置中对超薄膜顶部吸收器进行强大干扰的方法。我们通过在V形构型中设计和制造光电化化学 - 光伏(PEC-PV)堆叠的串联细胞来展示这一点,在V形配置中,短波长光子被反射回光阳极材料(hematite,fe2O3),而长波长光子被传输到底部的硅胶PV。我们采用光学模拟来确定DBR层的最佳厚度和V形角度,以最大程度地吸收超薄(10 nm厚)赤铁矿膜中的光吸收。与透明电流收集器上相同厚度相比,可以对DBR光谱响应进行量身定制,以允许吸收光子的三倍增强。使用DBR将底部硅PV细胞与超薄赤铁矿顶部PEC细胞息息,我们展示了无助的太阳能水分裂,并表明DBR可以设计用于增强超薄膜的强大干扰,同时启用堆叠的串联细胞构型。

Strong interference in ultrathin film semiconductor absorbers on metallic back reflectors has been shown to enhance the light harvesting efficiency of solar cell materials. However, metallic back reflectors are not suitable for tandem cell configurations because photons cannot be transmitted through the device. Here, we introduce a method to implement strong interference in ultrathin film top absorbers in a tandem cell configuration through use of distributed Bragg reflectors (DBRs). We showcase this by designing and fabricating a photoelectrochemical-photovoltaic (PEC-PV) stacked tandem cell in a V-shaped configuration where short wavelength photons are reflected back to the photoanode material (hematite, Fe2O3), whereas long wavelength photons are transmitted to the bottom silicon PV cell. We employ optical simulations to determine the optimal thicknesses of the DBR layers and the V-shape angle to maximize light absorption in the ultrathin (10 nm thick) hematite film. The DBR spectral response can be tailored to allow for a more than threefold enhancement in absorbed photons compared to a layer of the same thickness on transparent current collectors. Using a DBR to couple a bottom silicon PV cell with an ultrathin hematite top PEC cell, we demonstrate unassisted solar water splitting and show that DBRs can be designed to enhance strong interference in ultrathin films while enabling stacked tandem cell configuration.

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