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Solar-driven highly sustained splitting of seawater into hydrogen and oxygen fuels

机译:太阳能驱动的高度可持续的海水分解为氢气和氧气燃料

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摘要

Electrolysis of water to generate hydrogen fuel is an attractive renewable energy storage technology. However, grid-scale freshwater electrolysis would put a heavy strain on vital water resources. Developing cheap electrocatalysts and electrodes that can sustain seawater splitting without chloride corrosion could address the water scarcity issue. Here we present a multilayer anode consisting of a nickel–iron hydroxide (NiFe) electrocatalyst layer uniformly coated on a nickel sulfide (NiSx) layer formed on porous Ni foam (NiFe/NiSx-Ni), affording superior catalytic activity and corrosion resistance in solar-driven alkaline seawater electrolysis operating at industrially required current densities (0.4 to 1 A/cm2) over 1,000 h. A continuous, highly oxygen evolution reaction-active NiFe electrocatalyst layer drawing anodic currents toward water oxidation and an in situ-generated polyatomic sulfate and carbonate-rich passivating layers formed in the anode are responsible for chloride repelling and superior corrosion resistance of the salty-water-splitting anode.
机译:水电解产生氢燃料是一种有吸引力的可再生能源存储技术。但是,网格规模的淡水电解会给重要的水资源带来沉重的压力。开发廉价的电催化剂和电极,可以维持海水分裂而不会发生氯化物腐蚀,可以解决缺水问题。在这里,我们介绍了一种多层阳极,该阳极由均匀分布在多孔镍泡沫(NiFe / NiSx-Ni)上形成的硫化镍(NiSx)层上的氢氧化镍铁(NiFe)电催化剂层组成,具有出色的催化活性和耐腐蚀驱动的碱性海水电解在1,000小时内以工业要求的电流密度(0.4至1 A / cm 2 )运行。连续的,具有高氧释放反应活性的NiFe电催化剂层,将阳极电流拉向水氧化,并在阳极中形成原位生成的多原子硫酸盐和富含碳酸盐的钝化层,可防止氯化物排斥并提高盐水的耐腐蚀性阳极。

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