Enhanced catalytic activity in strained chemically exfoliated WS2 nanosheets for hydrogen evolution
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- 7 July 2013
- journal article
- Published by Springer Nature in Nature Materials
- Vol. 12 (9), 850-855
- https://doi.org/10.1038/nmat3700
Abstract
Efficient evolution of hydrogen through electrocatalysis at low overpotentials holds tremendous promise for clean energy. Hydrogen evolution can be easily achieved by electrolysis at large potentials that can be lowered with expensive platinum-based catalysts. Replacement of Pt with inexpensive, earth-abundant electrocatalysts would be significantly beneficial for clean and efficient hydrogen evolution. To this end, promising results have been reported using 2H (trigonal prismatic) XS₂ (where X = Mo or W) nanoparticles with a high concentration of metallic edges. The key challenges for XS₂ are increasing the number and catalytic activity of active sites. Here we report monolayered nanosheets of chemically exfoliated WS₂ as efficient catalysts for hydrogen evolution with very low overpotentials. Analyses indicate that the enhanced electrocatalytic activity of WS₂ is associated with the high concentration of the strained metallic 1T (octahedral) phase in the as-exfoliated nanosheets. Our results suggest that chemically exfoliated WS₂ nanosheets are interesting catalysts for hydrogen evolution.Keywords
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This publication has 51 references indexed in Scilit:
- Growth of Large-Area and Highly Crystalline MoS2 Thin Layers on Insulating SubstratesNano Letters, 2012
- Large‐Area Vapor‐Phase Growth and Characterization of MoS2 Atomic Layers on a SiO2 SubstrateSmall, 2012
- A Molecular MoS 2 Edge Site Mimic for Catalytic Hydrogen GenerationScience, 2012
- Highly active oxide photocathode for photoelectrochemical water reductionNature Materials, 2011
- Use of stable isotope labeling by amino acids in cell culture as a spike-in standard in quantitative proteomicsNature Protocols, 2011
- Structure and Valency of a Cobalt−Phosphate Water Oxidation Catalyst Determined by in Situ X-ray SpectroscopyJournal of the American Chemical Society, 2010
- Towards the computational design of solid catalystsNature Chemistry, 2009
- Structure of Restacked MoS2 and WS2 Elucidated by Electron CrystallographyJournal of the American Chemical Society, 1999
- Projector augmented-wave methodPhysical Review B, 1994
- Structural destabilization induced by lithium intercalation in MoS2 and related compoundsCanadian Journal of Physics, 1983