Zhang Dai, Wang Feilong, Zhao Wenqi, Cui Minghui, Fan Xueliang, Liang Rongqing, Ou Qiongrong, Zhang Shuyu
Institute of Future Lighting, Academy for Engineering and Technology, Fudan University, Shanghai, 200433, P.R. China.
Institute for Electric Light Sources, School of Information Science and Technology, Fudan University, Shanghai, 200433, P.R. China.
Adv Sci (Weinh). 2022 Sep;9(27):e2202445. doi: 10.1002/advs.202202445. Epub 2022 Jul 25.
The lack of highly efficient, durable, and cost-effective electrocatalysts for the hydrogen evolution reaction (HER) working at high current densities poses a significant challenge for the large-scale implementation of hydrogen production from renewable energy. Herein, amorphous molybdenum tungsten sulfide/nitrogen-doped reduced graphene oxide nanocomposites (a-MoWS /N-RGO) are synthesized by plasma treatment for use as high-performance HER catalysts. By adjusting the plasma treatment duration and chemical composition, an optimal a-MoWS /N-RGO catalyst is obtained, which exhibits a low overpotential of 348 mV at a current density of 1000 mA cm and almost no decay after 24 h of working at this current density, outperforming commercial platinum/carbon (Pt/C) and previously reported heteroatom-doped MoS -based catalysts. Based on density functional theory (DFT) calculations, it is found that with a reasonable tungsten doping level, the catalytic active site (2S ) shows excellent catalytic performance working at high current densities because extra electrons preferentially fill at 2S . The introduction of tungsten tends to lower the electronic structure energy, resulting in a closer-to-zero positive . Excessive tungsten introduction, however, can lead to structural damage and a worse HER performance under high current densities. The work provides a route towards rationally designing high-performance catalysts for the HER at industrial-level currents using earth-abundant elements.
缺乏能够在高电流密度下工作的高效、耐用且具有成本效益的析氢反应(HER)电催化剂,这对大规模实现可再生能源制氢构成了重大挑战。在此,通过等离子体处理合成了非晶态硫化钼钨/氮掺杂还原氧化石墨烯纳米复合材料(a-MoWS /N-RGO),用作高性能HER催化剂。通过调整等离子体处理时间和化学成分,获得了一种最佳的a-MoWS /N-RGO催化剂,该催化剂在电流密度为1000 mA cm时表现出348 mV的低过电位,并且在此电流密度下工作24小时后几乎没有衰减,性能优于商业铂/碳(Pt/C)和先前报道的杂原子掺杂的MoS基催化剂。基于密度泛函理论(DFT)计算发现,在合理的钨掺杂水平下,催化活性位点(2S )在高电流密度下表现出优异的催化性能,因为额外的电子优先填充在2S 处。钨的引入倾向于降低电子结构能量,导致 更接近零正值。然而,过量引入钨会导致结构破坏以及在高电流密度下更差的HER性能。这项工作提供了一条使用储量丰富的元素在工业级电流下合理设计高性能HER催化剂的途径。