Ning Minghui, Wang Yu, Wu Libo, Yang Lun, Chen Zhaoyang, Song Shaowei, Yao Yan, Bao Jiming, Chen Shuo, Ren Zhifeng
Department of Physics and Texas Center for Superconductivity at the University of Houston (TcSUH), University of Houston, Houston, TX, 77204, USA.
Cullen College of Engineering and TcSUH, University of Houston, Houston, TX, 77204, USA.
Nanomicro Lett. 2023 Jun 19;15(1):157. doi: 10.1007/s40820-023-01129-y.
NiMo-based nanostructures are among the most active hydrogen evolution reaction (HER) catalysts under an alkaline environment due to their strong water dissociation ability. However, these nanostructures are vulnerable to the destructive effects of H production, especially at industry-standard current densities. Therefore, developing a strategy to improve their mechanical strength while maintaining or even further increasing the activity of these nanocatalysts is of great interest to both the research and industrial communities. Here, a hierarchical interconnected NiMoN (HW-NiMoN-2h) with a nanorod-nanowire morphology was synthesized based on a rational combination of hydrothermal and water bath processes. HW-NiMoN-2h is found to exhibit excellent HER activity due to the accomodation of abundant active sites on its hierarchical morphology, in which nanowires connect free-standing nanorods, concurrently strengthening its structural stability to withstand H production at 1 A cm. Seawater is an attractive feedstock for water electrolysis since H generation and water desalination can be addressed simultaneously in a single process. The HER performance of HW-NiMoN-2h in alkaline seawater suggests that the presence of Na ions interferes with the reation kinetics, thus lowering its activity slightly. However, benefiting from its hierarchical and interconnected characteristics, HW-NiMoN-2h is found to deliver outstanding HER activity of 1 A cm at 130 mV overpotential and to exhibit excellent stability at 1 A cm over 70 h in 1 M KOH seawater.
基于镍钼的纳米结构因其强大的水解离能力,是碱性环境中最活跃的析氢反应(HER)催化剂之一。然而,这些纳米结构易受析氢破坏作用的影响,尤其是在工业标准电流密度下。因此,开发一种在保持甚至进一步提高这些纳米催化剂活性的同时提高其机械强度的策略,对研究界和工业界都极具吸引力。在此,基于水热法和水浴法的合理结合,合成了一种具有纳米棒-纳米线形态的分级互连NiMoN(HW-NiMoN-2h)。由于其分级形态上容纳了丰富的活性位点,HW-NiMoN-2h表现出优异的析氢活性,其中纳米线连接独立的纳米棒,同时增强了其结构稳定性,以承受1 A cm²的析氢。海水是水电解的一种有吸引力的原料,因为析氢和海水淡化可以在一个单一过程中同时实现。HW-NiMoN-2h在碱性海水中的析氢性能表明,Na离子的存在会干扰反应动力学,从而使其活性略有降低。然而,受益于其分级和互连特性,HW-NiMoN-2h在130 mV过电位下表现出1 A cm²的出色析氢活性,并在1 M KOH海水中1 A cm²的电流密度下超过70小时表现出优异的稳定性。