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Decoupled electrochemical water-splitting systems: a review and perspective

机译:去耦电化学水分裂系统:审查和观点

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Electrochemical water splitting is a promising technology to renewably generate hydrogen fuel from water. One particular drawback of conventional water splitting is that the hydrogen-forming reduction reaction is tightly coupled, both spatially and temporally, to the oxygen-forming oxidation reaction. This coupling poses challenges in both conventional and direct-solar-powered electrolysis systems, including gas crossover and separator degradation, sometimes necessitating the use of precious metal catalysts. In decoupled water splitting, the conventional electrolysis reactions are separated spatially, temporally, or both, via coupling to an intermediate redox mediator. Decoupled water-splitting systems are flexible and modular by nature, with other proposed benefits including facile coupling to renewable power sources, utilization of earth-abundant catalysts, and intrinsically safe operation. Here we review recent advances in decoupled water splitting and related fields, mainly categorizing decoupled systems by mediator phase and standard potential. We offer insight to how decoupling may be advantageous, and which tradeoffs need to be considered for practical implementation. We conclude our review with discussion of known technological hurdles and note opportunities for future discovery.
机译:电化学水分解是一种有前途的技术,可再次从水中再生产生氢气。传统水分解的一个特定缺点是氢形成还原反应在空间和时间上紧密地耦合到氧形成氧化反应。这种耦合在传统和直接太阳能电解系统中存在挑战,包括气体交叉和分离器降解,有时需要使用贵金属催化剂。在去耦水分裂中,通过偶联至中间氧化还原介体,常规电解反应在空间,时间或两者上分离。脱耦的水分裂系统是灵活的和模块化的,具有其他拟议益处,包括与可再生动力源,利用地球催化剂,以及本质上安全操作的辅助效益。在这里,我们审查了近耦的水分裂和相关领域的最近进步,主要通过调解阶段和标准潜力对解耦系统进行分类。我们提供对解耦可能是有利的,以及需要考虑实际实施的权衡。我们通过对未来发现的讨论和注意机会的讨论,我们得出审查。

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