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논문

(2026.05) Superaerophobic hydrogels for diaphragm modification to suppress gas crossover in alkaline water electrolyzers
작성자 관리자 작성일 2026-06-16 조회수 32

· 논문명 : Superaerophobic hydrogels for diaphragm modification to suppress gas crossover in alkaline water 

                 electrolyzers

· 저  자 Soi Lee,Jinseo Lee, Seunghyun Lee, Hyeongoo Kim,Yunseok Kang, Dong Woog Lee, Jungki Ryu*

· 게재지Journal of Materials Chemistry A (2026, 14, 20077-20087)


· 초록

Among low-temperature electrolyzer technologies, alkaline water electrolysis (AWE) is the most mature owing to its durability and 

reliance on inexpensive materials. However, AWEs still face safety concerns arising from gas crossover through porous diaphragms,

which can  lead to hydrogen accumulation in the oxygen stream and potential explosion risk. Suppressing gas crossover is therefore

essential for the safe and scalable deployment of AWE systems. Herein, we present a strategy to control diaphragm wettability using

superaerophobic polyvinyl alcohol (PVA) hydrogel coatings that mitigate gas crossover. Gas transport across the diaphragm was 

quantified through a combination of (i) penetrated oxygen assessment via H-cell oxygen reduction reaction (ORR) current analysis 

and (ii) direct dissolved  oxygen measurements during AWE operation. In addition, gas chromatography analysis of the anode gas 

phase was performed to directly verify hydrogen crossover. These complementary measurements consistently demonstrate a 

reduced crossover rate enabled by the hydrogel's superaerophobicity. In situ visualization further reveals rapid bubble detachment

from the hydrogel-coated surface, preventing pressure buildup and suppressing bulk gas penetration. Overall, this study introduces

a simple, energy-efficient diaphragm modification strategy that directly addresses a key safety challenge in AWE. By improving gas

management without compromising electrochemical performance, this approach offers a practical pathway toward safer and more

reliable alkaline water electrolysis for industrial hydrogen production.


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