Vincent Immanuel, Lee Eun-Chong, Kim Hyung-Man
Power System and Sustainable Energy Laboratory, High Safety Vehicle Core Technology Research Center, Department of Nanoscience and Engineering, INJE University 607 Eobang-Dong Gimhae-si Gyongsangnam-do 621-749 Republic of Korea
RSC Adv. 2020 Oct 9;10(61):37429-37438. doi: 10.1039/d0ra07190k. eCollection 2020 Oct 7.
Anion exchange membrane (AEM) electrolysis eradicates platinum group metal electrocatalysts and diaphragms and is used in conventional proton exchange membrane (PEM) electrolysis and alkaline electrolysis. It can produce pressurised hydrogen by using low cost non-noble metal catalysts. However, the performances are still lower than that of the conventional PEM electrolysis technology. In this study, we addressed the performance issue by using a novel combination of Ni-Fe-O for oxygen evolution reaction (OER) and Ni-Fe-Co hydrogen evolution reaction (HER) electrodes with a PBI anion exchange membrane. The Ni-Fe-O and Ni-Fe-Co electrodes exhibit exceptionally high catalytic activity, requiring over potentials that are as low as 236 and 84 mV dec, respectively, for OER and HER to occur. These electrocatalysts exhibits excellent durability which can be used as oxygen evolution and hydrogen evolution catalysts for long term electrolysis. The high rate capability of 1000 mA cm at 1.9 V and 60 °C demonstrates the potential of the combined membrane electrode assembly. The best performance, which is comparable to those of commercial PEM electrolysis systems, is thus an affordable alternative to this technology. In addition to that, the AEM electrolysis is promising on a multi-scale level for long-term hydrogen production.
阴离子交换膜(AEM)电解消除了铂族金属电催化剂和隔膜,用于传统的质子交换膜(PEM)电解和碱性电解。它可以使用低成本的非贵金属催化剂生产加压氢气。然而,其性能仍低于传统的PEM电解技术。在本研究中,我们通过将用于析氧反应(OER)的Ni-Fe-O和用于析氢反应(HER)的Ni-Fe-Co电极与PBI阴离子交换膜结合使用来解决性能问题。Ni-Fe-O和Ni-Fe-Co电极表现出极高的催化活性,OER和HER发生时所需的过电位分别低至236和84 mV dec。这些电催化剂表现出优异的耐久性,可作为长期电解的析氧和析氢催化剂。在1.9 V和60°C下1000 mA cm的高倍率性能证明了复合膜电极组件的潜力。因此,与商业PEM电解系统相当的最佳性能是该技术的一种经济实惠的替代方案。除此之外,AEM电解在多尺度水平上对于长期制氢具有前景。