Fan Junpeng, Ekspong Joakim, Ashok Anumol, Koroidov Sergey, Gracia-Espino Eduardo
Department of Physics, Umeå University Umeå 90187 Sweden
Department of Materials and Environmental Chemistry, Stockholm University Stockholm 106 91 Sweden.
RSC Adv. 2020 Sep 16;10(56):34323-34332. doi: 10.1039/d0ra05560c. eCollection 2020 Sep 10.
The high catalytic activity of cobalt-doped MoS (Co-MoS) observed in several chemical reactions such as hydrogen evolution and hydrodesulfurization, among others, is mainly attributed to the formation of the CoMoS phase, in which Co occupies the edge-sites of MoS. Unfortunately, its production represents a challenge due to limited cobalt incorporation and considerable segregation into sulfides and sulfates. We, therefore, developed a fast and efficient solid-state microwave irradiation synthesis process suitable for producing thin Co-MoS flakes (∼3-8 layers) attached on nitrogen-doped reduced graphene oxide. The CoMoS phase is predominant in samples with up to 15 at% of cobalt, and only a slight segregation into cobalt sulfides/sulfates is noticed at larger Co content. The Co-MoS flakes exhibit a large number of defects resulting in wavy sheets with significant variations in interlayer distance. The catalytic performance was investigated by evaluating the activity towards the hydrogen evolution reaction (HER), and a gradual improvement with increased amount of Co was observed, reaching a maximum at 15 at% with an overpotential of 197 mV at -10 mA cm, and a Tafel slope of 61 mV dec. The Co doping had little effect on the HER mechanism, but a reduced onset potential and charge transfer resistance contributed to the improved activity. Our results demonstrate the feasibility of using a rapid microwave irradiation process to produce highly doped Co-MoS with predominant CoMoS phase, excellent HER activity, and operational stability.
在析氢和加氢脱硫等多种化学反应中观察到的钴掺杂二硫化钼(Co-MoS)的高催化活性,主要归因于CoMoS相的形成,其中Co占据了MoS的边缘位点。不幸的是,由于钴掺入有限且大量偏析成硫化物和硫酸盐,其制备是一项挑战。因此,我们开发了一种快速高效的固态微波辐照合成工艺,适用于制备附着在氮掺杂还原氧化石墨烯上的薄Co-MoS薄片(约3-8层)。在钴含量高达15原子%的样品中,CoMoS相占主导地位,在更高的Co含量下仅观察到轻微偏析成钴硫化物/硫酸盐。Co-MoS薄片表现出大量缺陷,导致层间距离有显著变化的波浪状薄片。通过评估析氢反应(HER)的活性来研究催化性能,观察到随着Co含量增加催化活性逐渐提高,在15原子%时达到最大值,在-10 mA cm时过电位为197 mV,塔菲尔斜率为61 mV dec。Co掺杂对HER机理影响不大,但起始电位降低和电荷转移电阻减小有助于提高活性。我们的结果证明了使用快速微波辐照工艺制备具有主导CoMoS相、优异HER活性和操作稳定性的高掺杂Co-MoS的可行性。