4.7 Article

In-situ photochemical fabrication of transition metal-promoted amorphous molybdenum sulfide catalysts for enhanced photosensitized hydrogen evolution

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 42, Issue 16, Pages 11118-11129

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2017.01.235

Keywords

Amorphous molybdenum sulfide; Transition metals; Photochemical fabrication; Photosensitization; H-2 evolution; Water splitting

Funding

  1. National Science Foundation of China [21463001, 21263001]
  2. Natural Science Foundation of Ningxia Hui Autonomous Region [NZ15102]
  3. State Ethnic Affairs Commission [2066204]
  4. National Natural Science Foundation of China [2014QZP04]

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Amorphous molybdenum sulfide catalysts (MoSx) can efficiently catalyze the H-2 evolution reaction (HER); however, their catalytic activities are still limited that need to be improved. Herein, transition metal-promoted MoSx H-2 evolution catalysts were facilely fabricated through an in-situ photochemical reduction with inexpensive organic dye as photosensitizers. Under visible light (lambda >= 420 nm), the promotional effect of transition metals on the H-2 evolution over MoSx follows the order of Co > Fe approximate to Ni > unpromoted > Cu > Zn in Erythrosin B-triethanolamine (ErB-TEOA) system. The most active Co-promoted MoSx (Co-MoSx) catalyst is amorphous and composed of inter-connected nanoparticles with diameters of 30-50 nm. The Co-MoSx catalyst contains both CoMoS phase and Co oxides/hydroxides. At the optimal reaction conditions, the Co-MoSx catalyst with Co:Mo ratio of 4:6 exhibits enhanced H-2 evolution activity by 2 times as compared to unpromoted MoSx and turnover numbers (TONs) of 30 and 60 based on ErB and catalyst used, respectively. The Co-MoSx catalyst also shows a long-term stability without noticeable activity degradation. The formation pathways of Co-MoSx catalyst and the photocatalytic mechanism for enhanced H-2 evolution performance were studied and a two-step reaction mechanism involved an oxidative quenching pathway of dye was proposed. This study demonstrates that in-situ concurrent photochemical fabrication with transition metal modification of amorphous MoSx catalyst is an effective strategy for development of MoSx-based HER catalysts with enhanced performances. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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