Karimi Vahid, Qvistgaard Cédric Holme, Schmidt Søren, Wolfertz Alexander, Parker Joseph Don, Tetsuya Kai, Hayashida Hirotoshi, Shinohara Takenao, De Angelis Salvatore, Tengattini Alessandro, Sharma Raghunandan, Fedrigo Anna, Helfen Lukas, Morgen Per, Andersen Shuang Ma, Theil Kuhn Luise
Department of Green Technology, University of Southern Denmark, Odense M DK-5230, Denmark.
Department of Energy Conversion and Storage, Technical University of Denmark, Kgs. Lyngby DK-2800, Denmark.
ACS Appl Mater Interfaces. 2025 Sep 10;17(36):50742-50752. doi: 10.1021/acsami.5c11706. Epub 2025 Aug 31.
Anodic Ti-based porous transport layers (PTLs) are paramount for advancing high-efficiency proton exchange membrane water electrolyzers (PEMWEs). One of the major challenges with the development of PEMWE is the PTL/catalyst layer interface passivation, which is commonly alleviated by coating precious metals such as Pt. Herein, we report, for the first time, the usage of polarized neutron imaging (PNI) on a half-half PTL approach to investigate current distribution inside the PTL layer under the influence of Ti passivation under PEMWE operando condition. First, the electrochemical study of PEMWE reveals an obvious advantage of Pt coating in preventing Ti passivation by showing 822 mV less overpotential at 1 A cm (1.771 V) for the superior sample (Pt-coated PTL) compared to the PEMWE with pristine Ti PTL (2.539 V). Second, it is confirmed that using ex situ electronic and structural characterizations, Ti passivation cannot be recognized, suggesting a temporary passivation process in an operating PEMWE. Employing PNI for operando mapping of the current distribution inside the PEMWE shows that most of the electrical current favors the Pt-coated PTL, perfectly aligned with the results obtained from the high-resolution operando neutron radiography in which around 60% of the produced oxygen was found in the Pt-coated PTL.
阳极钛基多孔传输层(PTLs)对于推进高效质子交换膜水电解槽(PEMWEs)至关重要。PEMWE发展面临的主要挑战之一是PTL/催化剂层界面钝化,通常通过涂覆Pt等贵金属来缓解。在此,我们首次报道了在半半PTL方法上使用极化中子成像(PNI),以研究在PEMWE运行条件下Ti钝化影响下PTL层内的电流分布。首先,PEMWE的电化学研究表明,与具有原始Ti PTL的PEMWE(2.539 V)相比,优质样品(涂覆Pt的PTL)在1 A cm²(1.771 V)时过电位低822 mV,显示出Pt涂层在防止Ti钝化方面具有明显优势。其次,通过非原位电子和结构表征证实,无法识别Ti钝化,这表明在运行的PEMWE中存在临时钝化过程。使用PNI对PEMWE内的电流分布进行原位映射表明,大部分电流倾向于涂覆Pt的PTL,这与高分辨率原位中子射线照相获得的结果完美吻合,在该结果中,约60%的产生的氧气在涂覆Pt的PTL中被发现。