Jingjing Yan , Rundong Wu , Guoqiang Jin , Litao Jia , Gang Feng , Xili Tong
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引用次数: 0
摘要
通过碱性氢进化反应(HER)电解水是一种利用可再生清洁能源以低成本大规模生产高纯度氢气的可行方法。然而,水解离的高能障导致的缓慢动力学严重阻碍了其实际应用。本文展示了一系列铂纳米团簇/金纳米线(Pt/Ru NWs)混合催化剂,以加速碱性 HER。优化的 Pt/Ru NWs(10% wt Pt)表现出卓越的性能,具有超低的过电位(10 mA cm-2 时为 24 mV)、较小的塔菲尔斜率(26.3 mV dec-1)和长期稳定性,优于基准的商用 Pt/C-JM-20 % wt 催化剂。在碱性阴离子交换膜水电解装置中,这种催化剂也表现出了惊人的性能,在 1 A cm-2 的条件下,电池电压约为 1.9 V,而且稳定性极佳(超过 100 小时)。计算结果表明,铂/钌纳米线之所以能表现出如此优异的性能,是因为它形成了异质界面,通过铂簇和钌物质之间的协同作用,大大降低了水解离这一决定性速率步骤的能垒。这项工作为设计先进的碱性 HER 及其他材料提供了宝贵的前景。
Water electrolysis via alkaline hydrogen evolution reaction (HER) is a promising approach for large-scale production of high-purity hydrogen at a low cost, utilizing renewable and clean energy. However, the sluggish kinetics derived from the high energy barrier of water dissociation impedes seriously its practical application. Herein, a series of hybrid Pt nanoclusters/Ru nanowires (Pt/Ru NWs) catalysts are demonstrated to accelerate alkaline HER. And the optimized Pt/Ru NWs (10 % wt Pt) exhibits exceptional performance with an ultralow overpotential (24 mV at 10 mA cm−2), a small Tafel slope (26.3 mV dec−1), and long-term stability, outperforming the benchmark commercial Pt/C-JM-20 % wt catalyst. This amazing performance also occurred in the alkaline anion-exchange membrane water electrolysis devices, where it delivered a cell voltage of about 1.9 V at 1 A cm−2 and an outstanding stability (more than 100 h). The calculations have revealed such a superior performance exhibited by Pt/Ru NWs stems from the formed heterointerfaces, which significantly reduce the energy barrier of the decisive rate step of water dissociation via cooperative-action between Pt cluster and Ru substance. This work provides valuable perspectives for designing advanced materials toward alkaline HER and beyond.