材料科学
氢
法拉第效率
催化作用
电极
可逆氢电极
化学工程
极化(电化学)
标准氢电极
电池(电)
扩散
氢气储存
纳米技术
储能
电化学
制氢
图层(电子)
分解水
比能量
无机化学
吸附低温
钯氢电极
气体扩散电极
氢燃料
水溶液
扩散阻挡层
半电池
作者
Shunxin Tan,Peiyan Tong,Xuzhi Zhang,Hongxu Liu,Yameng Fan,Shuyang Wei,Guili Zhao,Yidi Wang,Ziwei Zhang,Zhenshan Lv,Zuodong Zhang,Ruihao Luo,Jingwen Xu,Nan Zhang,Yangping Sheng,Rong Xu,Taoli Jiang,Wei Chen
摘要
ABSTRACT Aqueous hydrogen batteries are promising candidates for large‐scale energy storage because of their high reliability and long lifespan. However, their practical application remains hindered by hydrogen electrodes that suffer from insufficient catalytic activity, high cost, and limited scalability. Here, we develop an integrated hydrogen electrode (iHE) by rationally integrating a catalyst with a meter‐scale, ultrathin hydrogen diffusion layer. A Ni‐based catalyst is incorporated as a representative into the hydrogen diffusion layer composed of an ultrathin, porous, and hydrophobic nickel‐plated membrane, yielding an electrode cost of only $3.6 m −2 , approximately 5% that of a conventional hydrogen electrode based on Pt catalyst supported on a commercial gas diffusion layer (Pt@GDL). The iHE exhibits a low polarization of 26 mV at 5 mA cm −2 and stable operation over 1600 h. The Ni‐H 2 (iHE) battery delivers a long cycle life of 3300 h with ~98% capacity retention and a negligible Coulombic efficiency decay rate of 0.033% h −1 . Furthermore, the Ni‐H 2 (iHE) full cell achieves an energy cost of only one‐sixth that of the Ni‐H 2 (Pt@GDL) counterpart, together with an energy density of 179.5 Wh kg −1 . These results highlight the advantages of the iHE in activity, stability, scalability, and cost, demonstrating its potential for grid‐scale energy storage.
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