材料科学
电解质
阳极
化学工程
电极
电解
膜
制作
电解水
多孔性
聚合物
扩散
氢
水运
大规模运输
聚合物电解质膜电解
双金属片
图层(电子)
气体扩散
电流密度
阴极
纳米技术
分解水
催化作用
耐久性
膜电极组件
作者
Jegon Lee,Sol Kim,Jin Young Kim,Jong Hyun Jang,Hee-Young Park,Bora Seo
标识
DOI:10.1016/j.cej.2025.168556
摘要
Achieving high-efficiency polymer electrolyte water electrolysis (PEMWE) with minimal use of precious metals remains a critical challenge for clean hydrogen production. A major bottleneck is the interface resistance within the membrane-electrode-diffusion layer, especially under low catalyst loadings. Here, a simple yet powerful catalyst-integrated diffusion layer fabrication strategy is presented that enables ultralow interface resistance even at reduced Ir loadings. By directly synthesizing a TiO 2 -supported IrO x catalyst (TiO 2 -IrO x ) onto the Ti felt through a single-step calcination, a porous transport electrode (PTE) is constructed and it serves as a high-performance anode. At an optimized Ir loading of only ~0.12 mg Ir cm −2 , the TiO 2 -IrO x PTE exhibits exceptional current density of 2.54 A cm −2 at 1.9 V, outperforming state-of-the-art benchmark electrodes. Moreover, even after long-term durability test with ultra-low loadings (<0.1 mg Ir cm −2 ), the ultralow interface resistance of the TiO 2 -IrO x PTE is maintained. As a result, the TiO 2 -IrO x PTE achieves a significantly high mass activity of 20 A mg Ir −1 at 1.9 V, far surpassing conventional Ir-based electrodes. This work provides a compelling pathway toward reducing dependence on scarce platinum-group metals without compromising performance of PEMWE system. • Spray-based fabrication of porous transport electrode for PEM water electrolysis. • Binder-free and Pt-free anode architecture for scalable and cost-effective design. • Ultralow interface resistance at low Ir loading (<0.1 mg cm −2 ). • High mass activity at 1.9 V, outperforming state-of-the-art Ir-based anodes.
科研通智能强力驱动
Strongly Powered by AbleSci AI