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Optimization of amorphous silicon double junction solar cells for an efficient photoelectrochemical water splitting device based on a bismuth vanadate photoanode

机译:基于钒酸铋光阳极的高效光电化学水分解装置的非晶硅双结太阳能电池的优化

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A photoelectrochemical water splitting device (PEC-WSD) was designed and fabricated based on cobalt-phosphate-catalysed and tungsten-gradient-doped bismuth vanadate (W:BiVO4) as the photoanode. A simple and cheap hydrogenated amorphous silicon (a-Si:H) double junction solar cell has been used to provide additional bias. The advantage of using thin film silicon (TF-Si) based solar cells is that this photovoltaic (PV) technology meets the crucial requirements for the PV component in PEC-WSDs based on W:BiVO4 photoanodes. TF-Si PV devices are stable in aqueous solutions, are manufactured by simple and cheap fabrication processes and their spectral response, voltage and current density show an excellent match with the photoanode. This paper is mainly focused on the optimization of the TF-Si solar cell with respect to the remaining solar spectrum transmitted through the W:BiVO4 photoanode. The current matching between the top and bottom cells is studied and optimized by varying the thickness of the a-Si:H top cell. We support the experimental optimization of the current balance between the two sub-cells with simulations of the PV devices. In addition, the impact of the light induced degradation of the a-Si:H double junction, the so-called Staebler-Wronski Effect {SWE), on the performance of the PEC-WSD has been studied. The light soaking experiments on the a-Si:H/a-Si:H double junctions over 1000 hours show that the efficiency of a stand-alone a-Si:H/a-Si:H double junction cell is significantly reduced due to the SWE. Nevertheless, the SWE has a significantly smaller effect on the performance of the PEC-WSD.
机译:以磷酸钴催化和钨梯度掺杂钒酸铋(W:BiVO4)为光阳极,设计制造了光电化学水分解装置(PEC-WSD)。简单廉价的氢化非晶硅(a-Si:H)双结太阳能电池已用于提供额外的偏压。使用基于薄膜硅(TF-Si)的太阳能电池的优势在于,该光伏(PV)技术满足了基于W:BiVO4光电阳极的PEC-WSD中PV组件的关键要求。 TF-Si PV器件在水溶液中稳定,可通过简单且廉价的制造工艺来制造,并且其光谱响应,电压和电流密度与光电阳极非常匹配。本文主要针对通过W:BiVO4光电阳极传输的剩余太阳光谱优化TF-Si太阳能电池。通过改变a-Si:H顶部电池的厚度来研究和优化顶部电池和底部电池之间的电流匹配。我们通过模拟光伏设备来支持两个子电池之间电流平衡的实验优化。此外,还研究了光诱导的a-Si:H双结降解(所谓的Staebler-Wronski效应(SWE))对PEC-WSD性能的影响。在1000小时内对a-Si:H / a-Si:H双结进行的光浸实验表明,由于以下原因,独立的a-Si:H / a-Si:H双结电池的效率显着降低SWE。但是,SWE对PEC-WSD的性能影响要小得多。

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