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A practical, organic-mediated, hybrid electrolyser that decouples hydrogen production at high current densities

机译:一种实用的,有机介导的混合电解槽,可在高电流密度下分离氢气产生

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摘要

Hydrogen is seen as a sustainable fuel of the future, yet the vast majority of global hydrogen production comes from the reformation of fossil fuels. Electrolytic water splitting using proton exchange membrane electrolysers (PEMEs) provides a pathway to sustainable hydrogen production through coupling to renewable energy sources, but can suffer from gas crossover at low current densities and high operating pressures, causing explosive gas mixtures and decreasing cell lifetimes. Here we demonstrate the application of a highly stable, organic electron-coupled proton buffer (ECPB) which allows the decoupling of hydrogen and oxygen production during water splitting. By merging concepts from redox flow battery and PEM electrolysis research, we have built a hybrid electrolyser device capable of decoupling the gas evolution reactions during water splitting. The device improves on both gas purity and operational safety, while still working at industrially relevant, high current density. Anthraquinone-2,7-disulfonic acid was used as an organic redox mediator in this two-step process, producing H2 at current densities of up to 3.71 A cm−2 at 2.00 V, extending the concept of the ECPB.
机译:氢被视为未来的可持续燃料,但是全球绝大部分的氢生产都来自化石燃料的改革。使用质子交换膜电解器(PEME)进行的电解水分解通过与可再生能源的耦合提供了可持续制氢的途径,但在低电流密度和高工作压力下会遭受气体穿越的困扰,从而导致爆炸性气体混合物并缩短了电池寿命。在这里,我们演示了高度稳定的有机电子耦合质子缓冲液(ECPB)的应用,该缓冲液允许在水分解过程中产生的氢气和氧气解耦。通过结合氧化还原液流电池和PEM电解研究的概念,我们构建了一种混合电解装置,能够将水分解过程中的析气反应解耦。该设备在提高气体纯度和操作安全性的同时,仍可在与工业相关的高电流密度下工作。在此两步过程中,蒽醌-2,7-二磺酸用作有机氧化还原介质,在2.00 V时电流密度高达3.71 A cm-2时产生H2,从而扩展了ECPB的概念。

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