功率波动对碱性水分离中镍基电极降解和氢气进化反应性能的影响:探究可再生能源对水电解的影响

Catalysts Pub Date : 2024-05-06 DOI:10.3390/catal14050307
Congying Liu, Bing-Jia Lin, Hailong Zhang, Yingying Wang, Hangzhou Wang, Junlei Tang, Caineng Zou
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引用次数: 0

摘要

将水电解与可再生能源结合起来生产氢气,是解决气候和能源危机的一条大有可为的途径。然而,可再生能源的波动特性不仅给水电解电极的使用带来了巨大挑战,也限制了制氢工业的发展。本研究探讨了三种不同波形(方波、阶梯波和三角波,用于模拟可再生能源的输入功率)对镍板阴极 HER 电化学催化行为的影响。在测试过程中,镍阴极的 HER 性能先是上升,然后略有下降。功率波动导致了镍阴极表面的降解,通过增加催化面积和活性位点增强了催化效果。然而,在功率波动的情况下长时间运行可能会破坏电极表面的形态和构成该表面的物质,从而可能导致催化效率下降。此外,还广泛研究了制备的 FeNiMo-LDH@NiMo/SS 阴极在不同波动幅度的方波电势下的电化学催化行为。波动幅度越大,LDH电极的过电位和稳定性越差,从而加速了阴极的降解。这项研究为水电解与波动可再生能源的耦合提供了技术基础,从而为 "绿色氢能 "产业的发展提供了帮助。
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Influence of Power Fluctuation on Ni-Based Electrode Degradation and Hydrogen Evolution Reaction Performance in Alkaline Water Splitting: Probing the Effect of Renewable Energy on Water Electrolysis
The combination of water electrolysis and renewable energy to produce hydrogen is a promising way to solve the climate and energy crisis. However, the fluctuating characteristics of renewable energy not only present a significant challenge to the use of water electrolysis electrodes, but also limit the development of the hydrogen production industry. In this study, the effects of three different types of waveforms (square, step, and triangle, which were used to simulate the power input of renewable energy) on the electrochemical catalysis behavior of Ni plate cathodes for HER was investigated. During the test, the HER performance of the Ni cathode increased at first and then slightly decreased. The fluctuating power led to the degradation of the Ni cathode surface, which enhanced the catalysis effect by increasing the catalytic area and the active sites. However, prolonged operation under power fluctuations could have damaged the morphology of the electrode surface and the substances comprising this surface, potentially resulting in a decline in catalytic efficiency. In addition, the electrochemical catalysis behavior of the prepared FeNiMo-LDH@NiMo/SS cathode when subjected to square-wave potential with different fluctuation amplitudes was also extensively studied. A larger amplitude of fluctuating power led to a change in the overpotential and stability of the LDH electrode, which accelerated the degradation of the cathode. This research provides a technological basis for the coupling of water electrolysis and fluctuating renewable energy and thus offers assistance to the development of the “green hydrogen” industry.
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