Zhang Baoshan, Liu Shuo, Zhang Shaojie, Cao Yu, Wang Huili, Han Chengyu, Sun Jie
Key Laboratory for Green Chemical Technology of Ministry of Education, School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, P. R. China.
Small. 2022 Nov;18(45):e2203852. doi: 10.1002/smll.202203852. Epub 2022 Oct 3.
Sustainable production of hydrogen from seawater electrolysis has attracted much attention in recent years. Considering that Cl might corrode metal substrate by crossing through the covered catalyst, the conventional Ni(II)Fe(III)-layered double hydroxide (NiFe-LDH) loaded on metal substrate, as a favorable oxygen evolution catalyst, cannot be directly used for seawater electrolysis. Herein, an anti-corrosion strategy of PO intercalation in NiFe-LDH is proposed, in which the highly negatively charged PO in the interlayers can prevent the Ni substrate from Cl corrosion by electrostatic repulsion. In order to verify the anti-corrosion effect, the two electrodes of the pristine NiFe-LDH and the PO intercalated NiFe-LDH are evaluated in a solution with high Cl concentration. PO can effectively hinder the migration of Cl between the interlayers of NiFe-LDH, thus the corrosion life of the PO intercalated NiFe-LDH is more than 100 times longer than that of the pristine NiFe-LDH. The improvement of stability is attributed to the inhibition effect of Cl passing through the interlayers of NiFe-LDH, leading to the protection of Ni substrate. This work provides a design strategy for the catalysts loaded on the metal substrate, which has excellent Cl -corrosion resistance and can be widely used in hydrogen generation from seawater electrolysis.
近年来,通过海水电解可持续生产氢气备受关注。考虑到氯离子可能会穿过覆盖的催化剂腐蚀金属基底,负载在金属基底上的传统镍铁层状双氢氧化物(NiFe-LDH)作为一种优良的析氧催化剂,不能直接用于海水电解。在此,提出了一种在NiFe-LDH中插入磷酸根(PO)的防腐策略,其中层间带高负电荷的PO可以通过静电排斥作用防止镍基底受到氯离子腐蚀。为了验证防腐效果,在高氯离子浓度的溶液中对原始NiFe-LDH和PO插入的NiFe-LDH的两个电极进行了评估。PO可以有效阻碍氯离子在NiFe-LDH层间的迁移,因此PO插入的NiFe-LDH的腐蚀寿命比原始NiFe-LDH长100多倍。稳定性的提高归因于氯离子穿过NiFe-LDH层间的抑制作用,从而保护了镍基底。这项工作为负载在金属基底上的催化剂提供了一种设计策略,该催化剂具有优异的抗氯离子腐蚀性能,可广泛应用于海水电解制氢。