Darvishzad Termeh, Stelmachowski Paweł
Faculty of Chemistry, Jagiellonian University, Gronostajowa 2, 30-387 Krakow, Poland.
Molecules. 2025 Mar 29;30(7):1522. doi: 10.3390/molecules30071522.
A growing interest in novel noble metal-free electrocatalysts is fuelled by the pressing need to overcome the drastic demand for sustainable energy sources. To this end, the oxygen evolution reaction (OER) utilising transition metal oxide-carbon composites in alkaline media is considered a robust technology. In many such systems, carbon is used as a conductive additive or support, and the interactions between carbon support materials and the active phase affect the efficiency of the electrocatalyst. Cobalt forms some of the most active and stable electrocatalysts for OER. In carbon-supported systems, the dispersion of the cobalt phase on the carbon surface is a key factor in influencing the catalyst activity in water-splitting reactions. In this study, a low-temperature plasma treatment is used to boost the efficiency of the cobalt active phase by functionalising the carbon support with various oxygen groups. We used a simple deposition-precipitation method to obtain cobalt hydroxide active phase over graphene nanoparticles. The activation of graphene nanoparticles with oxygen plasma allowed us to obtain a catalyst that showed only 317 mV@10 mA·cm. More importantly, in the series of plasma-activated samples, the OER activity was very high in a range of cobalt phase loadings, yielding a material with 2.4 wt.% of cobalt and an overpotential of only 327 mV@10 mA·cm. The results indicate that plasma activation of GNP support maximises the usage of the transition metal active phase, which allows for an improvement in area-normalised and a dramatic improvement in the mass-normalised OER electrocatalytic activity.
对新型无贵金属电催化剂的兴趣日益浓厚,这是由克服对可持续能源的迫切需求所推动的。为此,在碱性介质中利用过渡金属氧化物 - 碳复合材料的析氧反应(OER)被认为是一项强大的技术。在许多这样的系统中,碳被用作导电添加剂或载体,碳载体材料与活性相之间的相互作用会影响电催化剂的效率。钴形成了一些用于OER的最具活性和稳定性的电催化剂。在碳负载体系中,钴相在碳表面的分散是影响水分解反应中催化剂活性的关键因素。在本研究中,采用低温等离子体处理通过用各种氧基团对碳载体进行功能化来提高钴活性相的效率。我们使用简单的沉积沉淀法在石墨烯纳米颗粒上获得氢氧化钴活性相。用氧等离子体对石墨烯纳米颗粒进行活化使我们能够获得一种在10 mA·cm时过电位仅为317 mV的催化剂。更重要的是,在一系列等离子体活化的样品中,在一定范围的钴相负载量下OER活性非常高,得到一种钴含量为2.4 wt.%且在10 mA·cm时过电位仅为327 mV的材料。结果表明,GNP载体的等离子体活化使过渡金属活性相的利用率最大化,这使得面积归一化得到改善,质量归一化的OER电催化活性得到显著提高。