Key points are not available for this paper at this time.
Scalable and sustainable solar hydrogen production through photocatalytic water splitting requires highly active and stable earth-abundant co-catalysts to replace expensive and rare platinum. Here we employ density functional theory calculations to direct atomic-level exploration, design and fabrication of a MXene material, Ti3C2 nanoparticles, as a highly efficient co-catalyst. Ti3C2 nanoparticles are rationally integrated with cadmium sulfide via a hydrothermal strategy to induce a super high visible-light photocatalytic hydrogen production activity of 14,342 μmol h-1 g-1 and an apparent quantum efficiency of 40.1% at 420 nm. This high performance arises from the favourable Fermi level position, electrical conductivity and hydrogen evolution capacity of Ti3C2 nanoparticles. Furthermore, Ti3C2 nanoparticles also serve as an efficient co-catalyst on ZnS or ZnxCd1-xS. This work demonstrates the potential of earth-abundant MXene family materials to construct numerous high performance and low-cost photocatalysts/photoelectrodes.
Building similarity graph...
Analyzing shared references across papers
Loading...
Jingrun Ran
The University of Adelaide
Guoping Gao
Equilibrium Research
Fa‐tang Li
Hebei University of Science and Technology
SHILAP Revista de lepidopterología
Nature Communications
The University of Adelaide
Queensland University of Technology
Hebei University of Science and Technology
Building similarity graph...
Analyzing shared references across papers
Loading...
Ran et al. (Tue,) studied this question.
synapsesocial.com/papers/69d74f20df21310ab048f51b — DOI: https://doi.org/10.1038/ncomms13907