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Strategies for enhancing the photocurrent, photovoltage, and stability of photoelectrodes for photoelectrochemical water splitting

机译:增强光电流,光电电压和光电子的光电电压稳定性的策略

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摘要

To accelerate the deployment of hydrogen produced by renewable solar energy, several technologies have been competitively developed, including photoelectrochemical (PEC), photocatalytic, and photovoltaic-electrolysis routes. In this review, we place PEC in context with these competing technologies and highlight key advantages of PEC systems. After defining the unique performance metrics of the PEC water splitting system, recently developed strategies for enhancing each performance metric, such as the photocurrent density, photovoltage, fill factor, and stability are surveyed in conjunction with the relevant theoretical aspects. In addition, various advanced characterization methods are discussed, including recently developed in situ techniques, allowing us to understand not only the basic properties of materials but also diverse photophysical phenomena underlying the PEC system. Based on the insights gained from these advanced characterization techniques, we not only provide a resource for researchers in the field as well as those who want to join the field, but also offer an outlook of how thin film-based PEC studies could lead to commercially viable water splitting systems.
机译:为了加速可再生太阳能生产的氢,若干技术已经竞争力地发展,包括光电化学(PEC),光催化和光伏电解途径。在本次审查中,我们将PEC与这些竞争技术一起放置在上下文中,并突出PEC系统的关键优势。在定义PEC水分解系统的独特性能指标之后,最近开发了用于增强每个性能度量的策略,例如光电流密度,光电,填充因子和稳定性与相关的理论方面进行调查。此外,讨论了各种先进的表征方法,包括最近以原位技术开发的,允许我们不仅理解材料的基本性质,而且还可以理解PEC系统的不同的光物理现象。根据这些高级特征技术中获得的洞察力,我们不仅为该领域的研究人员提供资源以及那些想要加入该领域的资源,而且还提供了基于薄膜的PEC研究如何导致商业的展望可行的水分裂系统。

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