Ran Zhang, Jiyun Chen, Yihe Huang, Jianai Tang, Rongxia Zhao, Yuxiang Liu, Lei Lei, Degao Wang, Lin Li, Zhu Liu
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引用次数: 0
摘要
近年来,双原子合金(DAA,也称为双原子合金)催化剂由于其独特的几何和电结构而引起了人们的极大兴趣,这些催化剂的活性金属二聚体由活性较低的宿主金属支撑。尽管开发了许多合成DAA催化剂的方法,但大多数现代方法依赖于高温热解、昂贵的设备和复杂的程序。本研究首次在低缺陷石墨烯载体上通过紫外线(UV)激光照射ZIF-67@PBI复合载体上的混合金属前驱体,一步激光固相合成(PtRu)1Co DAAs。这种特殊的结构提高了在碱性溶液中析氢反应(HER)的催化性能。当电流密度为-10毫安厘米⁻2时,过电位达到27毫伏。该催化剂在200 mV下的质量活性是普通Pt/C催化剂的19.6倍。此外,在-200 mA cm−2下,催化活性保持稳定超过100 h。结果表明,通过精确控制金属纳米颗粒和碳载体上的缺陷形成,激光固相合成是一种合成DAA催化剂的可行方法。这种一步激光技术快速、经济,为大规模合成DAA催化剂开辟了新的途径。
One-Step Laser Synthesis of Dual-Atom Alloy Catalysts for Hydrogen Evolution Reaction
Recently, dual-atom alloy (DAA, also named diatomic alloy) catalysts with active metal dimers supported by a less active host metal have attracted considerable interest owing to their distinctive geometric and electrical configurations. Despite developing many ways for synthesizing DAA catalysts, most contemporary methods depend on high-temperature pyrolysis, costly apparatus, and intricate procedures. This study presents, for the first time, a one-step laser solid-phase synthesis of (PtRu)1Co DAAs on low-defect graphene support via ultraviolet (UV) laser irradiation of mixed metal precursors on a ZIF-67@PBI composite support. The special structure enhances the catalytic performance for hydrogen evolution reaction (HER) in an alkaline solution. An overpotential of 27 mV is reached at a current density of -10 mA cm⁻2. The mass activity at 200 mV is 19.6 times more than that of the commercial Pt/C catalyst. Moreover, the catalytic activity sustained stability over 100 h at -200 mA cm−2. The results demonstrated the potential of laser solid-phase synthesis as a viable method for synthesizing DAA catalysts via precise controlling defect formations on metal nanoparticles and carbon support. This one-step laser technique is rapid and cost-effective and opens up a new avenue toward large-scale synthesis of DAA catalysts.
期刊介绍:
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