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Nickel-Doped Silver Sulfide: An Efficient Air-Stable Electrocatalyst for Hydrogen Evolution from Neutral Water

机译:掺杂镍的硫化银:一种高效的空气稳定型电催化剂,用于从中性水中释放出氢气

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摘要

A low-cost, platinum-free electrocatalyst for hydrogen (H2) generation via the water splitting reaction holds great promise to meet the demand of clean and sustainable energy sources. Recent studies are mainly concerned with semiconducting materials like sulfides, selenides, and phosphides of different transition metals as electrocatalysts. Doping of the transition metals within the host matrix is a good strategy to improve the electrocatalytic activity of the host material. However, this activity largely depends on the nature of the dopant metal and its host matrix as well. To exploit this idea, here, in the present work, we have synthesized semiconducting Ag2S nanoparticles and successfully doped them with different transition metals like Mn, Fe, Co, and Ni to study their electrocatalytic activity for the hydrogen evolution reaction from neutral water (pH = 7). Among the systems doped with these transition metals, the Ni-doped Ag2S (Ni–Ag2S) system shows a very low overpotential (50 mV) with high catalytic current in neutral water. The trend in electrocatalytic activity of different transition metals has also been explained. The Ni–Ag2S system also shows very good stability in ambient atmosphere over a long period of time and suffers no catalytic degradation in the presence of oxygen. Structural characterizations are carried out using X-ray diffraction, X-ray photoelectron spectroscopy, transmission electron microscopy, and energy-dispersive X-ray spectroscopy to establish the phase purity and morphology of the materials.
机译:通过水分解反应生产氢(H2)的低成本,无铂的电催化剂具有广阔的前景,有望满足清洁和可持续能源的需求。最近的研究主要涉及半导体材料,例如不同过渡金属的硫化物,硒化物和磷化物作为电催化剂。在主体基质中掺杂过渡金属是提高主体材料电催化活性的良好策略。但是,这种活性很大程度上取决于掺杂金属及其主体基质的性质。为了利用这一思想,在本文中,我们合成了半导体Ag2S纳米颗粒,并成功地将它们掺入了不同的过渡金属(如Mn,Fe,Co和Ni),以研究它们对中性水(pH = 7)。在掺杂有这些过渡金属的系统中,掺杂镍的Ag2S(Ni–Ag2S)系统在中性水中具有很高的催化电流,极低的过电势(50 mV)。还已经解释了不同过渡金属的电催化活性的趋势。 Ni-Ag2S系统在长时间的环境中也显示出非常好的稳定性,并且在有氧条件下不会发生催化降解。使用X射线衍射,X射线光电子能谱,透射电子显微镜和能量色散X射线能谱进行结构表征,以建立材料的相纯度和形态。

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