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Upscaling of integrated photoelectrochemical water-splitting devices to large areas

机译:集成光电化学水分解装置的大规模升级

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摘要

Photoelectrochemical water splitting promises both sustainable energy generation and energy storage in the form of hydrogen. However, the realization of this vision requires laboratory experiments to be engineered into a large-scale technology. Up to now only few concepts for scalable devices have been proposed or realized. Here we introduce and realize a concept which, by design, is scalable to large areas and is compatible with multiple thin-film photovoltaic technologies. The scalability is achieved by continuous repetition of a base unit created by laser processing. The concept allows for independent optimization of photovoltaic and electrochemical part. We demonstrate a fully integrated, wireless device with stable and bias-free operation for 40 h. Furthermore, the concept is scaled to a device area of 64 cm2 comprising 13 base units exhibiting a solar-to-hydrogen efficiency of 3.9%. The concept and its successful realization may be an important contribution towards the large-scale application of artificial photosynthesis.
机译:光电化学水分解技术有望实现可持续的能源生产和以氢的形式存储能量。但是,要实现这一愿景,就需要将实验室实验设计为大规模技术。迄今为止,仅提出或实现了用于可伸缩设备的几个概念。在这里,我们介绍并实现一个概念,该概念通过设计可扩展到大面积并与多种薄膜光伏技术兼容。可扩展性是通过连续重复激光处理产生的基本单元来实现的。该概念允许对光伏和电化学部件进行独立优化。我们演示了一种完全集成的无线设备,可在40 h内保持稳定且无偏差运行。此外,该概念可扩展到64平方厘米的器件面积,其中包括13个基本单元,其太阳能-氢气效率为3.9%。该概念及其成功实现可能是对人工光合作用大规模应用的重要贡献。

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