Dingcen Duan, Sen Ren, Yatian Huang, Zhanglong Tang, Yan Wang, Xin Chen, Xingbo Ge
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引用次数: 0
摘要
在这项研究中,通过简单的一步电沉积方法在泡沫铜上原位制备了一种具有独特三元金属硫化物纳米棒阵列结构的自支撑材料((NiCo-Cu)Sx/CF)。在电化学驱动下,硫脲快速生成丰富的S2 -离子,加速了它们与Ni2+和Co2+的结合,从而在纳米棒阵列上形成催化富集的表面。高密度纳米棒阵列提供了最大限度的活性位点,从而增强了析氢反应(HER)。这种原位生长的自支撑结构有效地消除了对粘合剂(传统催化剂中常见的)的需求,避免了额外的界面阻力,并确保了电催化操作期间的长期稳定性。金属组分(Ni, Co和Cu)之间的协同相互作用优化了局部电子环境,为催化析氢创造了有利条件。实验结果表明,三元金属硫化物纳米复合材料(记为(NiCo-Cu)Sx/CF)的析氢反应性能优于二元金属硫化物纳米复合材料。值得注意的是,该催化剂只需要42和161 mV过电位就可以在1 M KOH下分别提供10 mA·cm-2和100 mA·cm-2电流密度,并具有100 h的运行稳定性。这项工作为开发用于能量转换的自支撑三元非贵金属催化剂提供了可行的策略。
One-Step Electrodeposition of Ternary Metal Sulfide Composite Nanorod Arrays as a Self-Supported Electrocatalyst for the Hydrogen Evolution Reaction
In this study, a self-supported material with a unique ternary metal sulfide nanorod array structure was fabricated in situ on copper foam via a facile one-step electrodeposition approach ((NiCo–Cu)Sx/CF). The electrochemically driven rapid generation of abundant S2– ions from thiourea accelerates their combination with Ni2+ and Co2+, resulting in a catalytically enriched surface on the nanorod array. The high-density nanorod arrays provide maximally accessible active sites, thereby enhancing the hydrogen evolution reaction (HER). The in situ grown self-supported structure effectively eliminates the need for binders (common in conventional catalysts), avoids additional interfacial resistance, and ensures long-term stability during electrocatalytic operation. The synergistic interactions among the metal components (Ni, Co, and Cu) optimize the local electronic environment, creating favorable conditions for catalytic hydrogen evolution. The experimental results demonstrate that the ternary metal sulfide nanocomposite (denoted as (NiCo–Cu)Sx/CF) exhibits superior hydrogen evolution reaction performance compared to its binary counterparts. Remarkably, the catalyst required only 42 and 161 mV overpotential to deliver 10 mA·cm–2 and 100 mA·cm–2 current densities in 1 M KOH, respectively, with 100 h operational stability. This work provides a viable strategy for developing self-supported ternary non-noble metal catalysts for energy conversion applications.
期刊介绍:
Langmuir is an interdisciplinary journal publishing articles in the following subject categories:
Colloids: surfactants and self-assembly, dispersions, emulsions, foams
Interfaces: adsorption, reactions, films, forces
Biological Interfaces: biocolloids, biomolecular and biomimetic materials
Materials: nano- and mesostructured materials, polymers, gels, liquid crystals
Electrochemistry: interfacial charge transfer, charge transport, electrocatalysis, electrokinetic phenomena, bioelectrochemistry
Devices and Applications: sensors, fluidics, patterning, catalysis, photonic crystals
However, when high-impact, original work is submitted that does not fit within the above categories, decisions to accept or decline such papers will be based on one criteria: What Would Irving Do?
Langmuir ranks #2 in citations out of 136 journals in the category of Physical Chemistry with 113,157 total citations. The journal received an Impact Factor of 4.384*.
This journal is also indexed in the categories of Materials Science (ranked #1) and Multidisciplinary Chemistry (ranked #5).