State Key Laboratory of Heavy Oil Processing, China University of Petroleum , Beijing 102249, China.
Sichuan Tianyi Science & Technology Co. Ltd., Chengdu 610225, China.
ACS Appl Mater Interfaces. 2015 Dec 16;7(49):27242-53. doi: 10.1021/acsami.5b08420. Epub 2015 Dec 3.
Highly active and low-cost catalysts for hydrogen evolution reaction (HER) are crucial for the development of efficient water splitting. Molybdenum disulfide (MoS2) nanosheets possess unique physical and chemical properties, which make them promising candidates for HER. Herein, we reported a facile, effective, and scalable strategy by a deposition-precipitation method to fabricate metal-doped (Fe, Co, Ni) molybdenum sulfide with a few layers on carbon black as noble metal-free electrocatalysts for HER. The CoMoS phase after thermal annealing in Co-doped MoS2 plays a crucial role for the enhanced HER. The optimized Co-doped MoS2 catalyst shows superior HER performance with a high exchange current density of 0.03 mA·cm(-2), low onset potential of 90 mV, and small Tafel slope of 50 mV·dec(-1), which also exhibits excellent stability of 10000 cycles with negligible loss of the cathodic current. The superior HER activity originates from the synergistically structural and electronic modulations between MoS2 and Co ions, abundant defects in the active edge sites, as well as the good balance between active sites and electronic conductivity. Thanks to their ease of synthesis, low cost, and high activity, the Co-doped MoS2 catalysts appear to be promising HER catalysts for electrochemical water splitting.
用于析氢反应(HER)的高效且低成本的催化剂对于高效水分解的发展至关重要。二硫化钼(MoS2)纳米片具有独特的物理和化学性质,这使得它们成为 HER 的有前途的候选者。在此,我们通过沉积沉淀法报道了一种简便、有效且可扩展的策略,以在碳黑上制备具有几层的金属掺杂(Fe、Co、Ni)的硫化钼作为无贵金属的 HER 电催化剂。在 Co 掺杂的 MoS2 中进行热退火后的 CoMoS 相对于增强的 HER 起着至关重要的作用。优化后的 Co 掺杂的 MoS2 催化剂表现出优异的 HER 性能,具有高交换电流密度为 0.03 mA·cm-2,低起始电位为 90 mV,小 Tafel 斜率为 50 mV·dec-1,并且在 10000 次循环后具有出色的稳定性,阴极电流几乎没有损失。优越的 HER 活性源于 MoS2 和 Co 离子之间的协同结构和电子调制、活性边缘位点的丰富缺陷以及活性位点与电子导电性之间的良好平衡。由于其易于合成、低成本和高活性,Co 掺杂的 MoS2 催化剂似乎是电化学水分解的有前途的 HER 催化剂。