阳极
材料科学
电解
电解水
电化学
化学工程
降级(电信)
膜
质子
质子交换膜燃料电池
电压
铱
电流密度
联轴节(管道)
分解水
沉积(地质)
聚合物电解质膜电解
耐久性
纳米技术
制氢
法拉第效率
储能
原子层沉积
能量转换
阴极
开路电压
密度泛函理论
导电体
无机化学
作者
Eui Tae Kim,Sangwoo Kim,S. C. Park,PumSuk Park,Eunbyeol Ko,Jemee Joe,Ho Yeon Son,Juyeon Kang,Julie J. Kim,Kibeom Cheon,Kyungin Kim,Kyungin Kim,Soree Kim,Geunsung Lee,Jaehak Jeong,Manki Cho,Noma Kim,Jai Hyun Koh,Kihwan Kim,Kihwan Kim
标识
DOI:10.1038/s41467-026-75113-6
摘要
Abstract The durability and cost of iridium-based anodes remain key challenges for high-current density operation of proton exchange membrane water electrolyzers. Here, we report a dual-interface stabilization strategy based on atomic layer deposition of TiO 2 onto IrO 2 catalysts. The resulting anodes sustain operation at 3.0 A cm −2 for 2600 h with near-zero voltage degradation at an iridium loading of 0.4 mg cm −2 , whereas bare IrO 2 exhibits continuous voltage decay over 1000 h at a rate of 31.5 mV kh −1 . Combined experimental characterization and theoretical calculations reveal that interfacial Ti-O-Ir coupling suppresses Ir over-oxidation and dissolution, while the TiO 2 -coated surface strengthens ionomer-catalyst interactions and preserves mass-transport pathways during prolonged operation. This strategy is fully compatible with roll-to-roll manufacturing, enabling industrially scalable implementation. This interfacial engineering approach offers a generalizable design principle for extending electrolyzer lifetime and reducing precious-metal loading across diverse electrochemical energy conversion technologies.
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