Poli Stefano, Poleunis Claude, Miola Matteo, Gerlach Dominic, Rudolf Petra, Delcorte Arnaud, Lammers Hans, de Groot Matheus T, Morales Dulce M, Pescarmona Paolo P
Chemical Engineering Group, Engineering and Technology institute Groningen (ENTEG), University of Groningen The Netherlands. E-mail:
Institute of Condensed Matter and Nanosciences - Bio & Soft Matter, Surface Characterisation, Université Catholique de Louvain Louvain-la-Neuve Belgium.
Green Chem. 2025 Apr 11. doi: 10.1039/d5gc00114e.
To enable green hydrogen production through alkaline water electrolysis, it is crucial to enhance the activity of nickel electrocatalysts towards the oxygen evolution reaction (OER), while preserving high stability. Here, we present a new and effective strategy to achieve this target through the introduction of short, periodical regeneration steps, complemented with the accurate tuning of traces of iron in the electrolyte. This strategy allowed retaining the enhanced activity brought about by the iron species adsorbed on the nickel electrode for the whole test duration (72 h) at an industrially relevant current density of 300 mA cm with a 1.0 M KOH electrolyte containing 100 ppb of iron (mimicking a commercial electrolyte). Under the same conditions but without regeneration, a dramatic deactivation was observed after 18 h. Time-of-flight secondary ion mass spectrometry (ToF-SIMS) highlighted that such deactivation is correlated to the loss of iron species from the surface of the electrode. The regeneration steps help retain the iron species on the surface of the nickel electrode, thus granting the desired high OER activity and stability. We estimated that this regeneration strategy could lead to up to 18% energy saving compared to the current standard operating conditions of alkaline electrolysers.
为了通过碱性水电解实现绿色制氢,提高镍电催化剂对析氧反应(OER)的活性并保持高稳定性至关重要。在此,我们提出了一种新的有效策略,通过引入短期周期性再生步骤,并精确调节电解液中的痕量铁来实现这一目标。该策略能够在含有100 ppb铁的1.0 M KOH电解液(模拟商业电解液)中,在300 mA cm的工业相关电流密度下,在整个测试持续时间(72小时)内保持镍电极上吸附的铁物种带来的增强活性。在相同条件下但不进行再生时,18小时后观察到显著失活。飞行时间二次离子质谱(ToF-SIMS)表明,这种失活与电极表面铁物种的损失有关。再生步骤有助于将铁物种保留在镍电极表面,从而赋予所需的高OER活性和稳定性。我们估计,与碱性电解槽目前的标准操作条件相比,这种再生策略可节省高达18%的能源。