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首页> 外文期刊>Applied Surface Science >Single cobalt atom anchored on N-doped graphyne for boosting the overall water splitting
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Single cobalt atom anchored on N-doped graphyne for boosting the overall water splitting

机译:单个钴原子锚固在N掺杂的石墨烯上以促进总水分解

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Developing inexpensive and high-active electrocatalysts for overall water splitting is important to the development of future clean energy technologies. Many non-noble metal single-atom catalysts (SACs) present unsatisfactory water-splitting catalytic performance because of their intrinsic electronic structures. Here, through the density functional theory calculations, a nitrogen atom doping strategy is applied to directly tune the electronic structure of the SAC and boost their catalytic activities towards both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). By precisely manipulating N doping modes in graphyne supported single Co atom catalyst (Co@GY), the stability, electronic properties, and HER, as well as OER catalytic activities of these N-doped Co@GY catalysts are investigated. It is found that the N-induced charge redistribution on the surface of the N-doped Co@GY catalysts greatly affects their HER and OER performances. The N-induced charge density not only increases the number of active sites of Co@N-1-GY and enhances its catalytic activity for HER, but also weakens the chemisorption of oxygenated species and decreases distinctly the over-potential for OER, making Co@N-1-GY a promising bifunctional electrocatalyst for water splitting. This work offers a feasible strategy for experimental groups to properly tune the electronic structures of catalysts and improve catalytic activity.
机译:开发用于整体水分解的廉价且高活性的电催化剂对于未来清洁能源技术的发展很重要。许多非贵金属单原子催化剂(SAC)由于其固有的电子结构而表现出不令人满意的水分解催化性能。在这里,通过密度泛函理论计算,应用氮原子掺杂策略直接调节SAC的电子结构,并提高它们对氢析出反应(HER)和氧析出反应(OER)的催化活性。通过精确控制石墨烯负载的单Co原子催化剂(Co @ GY)中的N掺杂模式,研究了这些N掺杂Co @ GY催化剂的稳定性,电子性能和HER以及OER催化活性。研究发现,N掺杂的Co @ GY催化剂表面N诱导的电荷再分布会极大地影响其HER和OER性能。 N诱导的电荷密度不仅增加了Co @ N-1-GY的活性位点数量,增强了其对HER的催化活性,而且还弱化了含氧物质的化学吸附并明显降低了OER的过电势,从而使Co @ N-1-GY是一种有前景的用于水分解的双功能电催化剂。这项工作为实验组提供了可行的策略,以适当地调节催化剂的电子结构并提高催化活性。

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