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用于千瓦级碱性海水电解的耐腐蚀镍铁阳极。

Corrosion-resistant NiFe anode towards kilowatt-scale alkaline seawater electrolysis.

作者信息

Sun Xiaogang, Shen Wei, Liu Hao, Xi Pinxian, Jaroniec Mietek, Zheng Yao, Qiao Shi-Zhang

机构信息

School of Chemical Engineering, The University of Adelaide, Adelaide, SA, 5005, Australia.

College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou, 730000, China.

出版信息

Nat Commun. 2024 Nov 28;15(1):10351. doi: 10.1038/s41467-024-54754-5.

Abstract

Development of large-scale alkaline seawater electrolysis requires robust and corrosion-resistant anodes. Here we propose engineering NiFe layered double hydroxide (LDH)-based anodes by incorporating a series of anions into the LDH interlayers. The most optimal NiFe LDH anode with intercalated phosphates demonstrates stable operation at a high current density of 1.0 A cm for over 1000 hours in a 2 W-scale alkaline seawater electrolyzer (ASWE). Fundamental studies indicate that the basicity, indicated by pK values, of the intercalated anions in NiFe LDH governs its oxygen evolution reaction activity and corrosion resistance. Highly basic anions (i.e., phosphates) securely anchor Fe sites and facilitate proton transfer to boost both durability and activity. Notably, we demonstrate the proof-of-concept for the NiFe anode in an industrial 1 kW-scale ASWE stack (1,081.2 cm anode area in total). This unit achieves a stable operating current density of 0.5 A cm at about 2.0 V, twice that of the commercial alkaline pure water electrolyzer, contributing to an economically competitive hydrogen production cost of US$ 1.96 kg.

摘要

大规模碱性海水电解技术的发展需要坚固且耐腐蚀的阳极。在此,我们提出通过将一系列阴离子引入层状双氢氧化物(LDH)的中间层来设计基于镍铁层状双氢氧化物(LDH)的阳极。插入磷酸盐的最优镍铁LDH阳极在2瓦规模的碱性海水电解槽(ASWE)中,于1.0 A cm的高电流密度下稳定运行超过1000小时。基础研究表明,镍铁LDH中插入阴离子的碱度(以pK值表示)决定了其析氧反应活性和耐腐蚀性。高碱性阴离子(即磷酸盐)能牢固地锚定铁位点并促进质子转移,从而提高耐久性和活性。值得注意的是,我们在工业规模的1千瓦级ASWE电池堆(阳极总面积为1,081.2平方厘米)中展示了镍铁阳极的概念验证。该装置在约2.0伏电压下实现了0.5 A cm的稳定运行电流密度,是商用碱性纯水电解槽的两倍,有助于将制氢成本降低至具有经济竞争力的每千克1.96美元。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/38e3/11605038/20a52e098727/41467_2024_54754_Fig1_HTML.jpg

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