Restoring the Performance of Polymer Electrolyte Membrane Water Electrolysis Cells by Immersion in Strong and Weak Acids Without Cell Disassembly
Taiga Goto, Pyae Pyae Shwe Sin, Kensuke NishiokaHydrogen production via polymer electrolyte membrane (PEM) water electrolysis has attracted considerable attention as a promising technology to store renewable electricity and combat global warming. Although PEM water electrolyzers can produce high-purity hydrogen at high current densities, the use of low-purity water leads to device degradation because metal ions from the water are deposited on the membrane, thereby increasing its resistance and operating voltage. In this study, an in-situ recovery method was developed, in which degraded PEM water electrolysis cells were chemically treated without disassembly. Cells after degradation were subjected to a 24-h chemical treatment with either a strong acid (1.0 mol/L nitric acid) or a weak acid (12.9 and 1.0 mol/L phosphoric acid), followed by the supply of ultrapure water for 72 h. Recovery was evaluated using cell voltage measurements, while scanning electron microscopy (SEM)-dispersive X-ray spectroscopy (EDX) and inductively coupled plasma (ICP) analyses were performed to investigate membrane morphology, elemental distributions, and metal ion removal. Among the tested acids, 12.9 mol/L phosphoric acid showed the highest voltage recovery performance, achieving a 90% recovery ratio immediately after treatment (0 h). Moreover, a comparison of the voltage recovery ratios at 1 h post-immersion suggests that higher hydrogen ion concentrations are more effective for the recovery of degraded PEMs. These findings demonstrate that in-situ acid treatment can restore the performance of contaminated PEM water electrolyzers without disassembly and may provide a practical approach for extending cell lifetime and reducing maintenance requirements.