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Design Principle and Loss Engineering for Photovoltaic–Electrolysis Cell System

机译:光伏电解电池系统的设计原理与损耗工程

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The effects of exchange current density, Tafel slope, system resistance, electrode area, light intensity, and solar cell efficiency were systematically decoupled at the converter-assisted photovoltaic–water electrolysis system. This allows key determinants of overall efficiency to be identified. On the basis of this model, 26.5% single-junction GaAs solar cell was combined with a membrane-electrode-assembled electrolysis cell (EC) using the dc/dc converting technology. As a result, we have achieved a solar-to-hydrogen conversion efficiency of 20.6% on a prototype scale and demonstrated light intensity tracking optimization to maintain high efficiency. We believe that this study will provide design principles for combining solar cells, ECs, and new catalysts and can be generalized to other solar conversion chemical devices while minimizing their power loss during the conversion of electrical energy into fuel.
机译:在转换器辅助的光伏-水电解系统中,交换电流密度,Tafel斜率,系统电阻,电极面积,光强度和太阳能电池效率的影响已系统地分离。这样可以确定总体效率的关键决定因素。在此模型的基础上,使用dc / dc转换技术将26.5%的单结GaAs太阳能电池与膜电极组装式电解池(EC)结合在一起。结果,我们在原型规模上实现了20.6%的太阳能转换效率,并展示了光强度跟踪优化以保持高效率。我们相信,这项研究将提供组合太阳能电池,EC和新催化剂的设计原理,并且可以推广到其他太阳能转化化学装置,同时将电能转化为燃料期间的功率损耗降至最低。

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