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2.
Phys Chem Chem Phys ; 14(1): 76-81, 2012 Jan 07.
Article in English | MEDLINE | ID: mdl-22071504

ABSTRACT

This communication examines the effect of the surface morphology of polycrystalline copper on electroreduction of CO(2). We find that a copper nanoparticle covered electrode shows better selectivity towards hydrocarbons compared with the two other studied surfaces, an electropolished copper electrode and an argon sputtered copper electrode. Density functional theory calculations provide insight into the surface morphology effect.

3.
Nat Mater ; 10(6): 434-8, 2011 Jun.
Article in English | MEDLINE | ID: mdl-21516095

ABSTRACT

The production of fuels from sunlight represents one of the main challenges in the development of a sustainable energy system. Hydrogen is the simplest fuel to produce and although platinum and other noble metals are efficient catalysts for photoelectrochemical hydrogen evolution, earth-abundant alternatives are needed for large-scale use. We show that bioinspired molecular clusters based on molybdenum and sulphur evolve hydrogen at rates comparable to that of platinum. The incomplete cubane-like clusters (Mo(3)S(4)) efficiently catalyse the evolution of hydrogen when coupled to a p-type Si semiconductor that harvests red photons in the solar spectrum. The current densities at the reversible potential match the requirement of a photoelectrochemical hydrogen production system with a solar-to-hydrogen efficiency in excess of 10%. The experimental observations are supported by density functional theory calculations of the Mo(3)S(4) clusters adsorbed on the hydrogen-terminated Si(100) surface, providing insights into the nature of the active site.


Subject(s)
Hydrogen/chemistry , Platinum/chemistry , Silicon/chemistry , Sunlight , Catalysis , Semiconductors
4.
J Am Chem Soc ; 133(14): 5485-91, 2011 Apr 13.
Article in English | MEDLINE | ID: mdl-21417329

ABSTRACT

To enable the development of low temperature fuel cells, significant improvements are required to the efficiency of the Pt electrocatalysts at the cathode, where oxygen reduction takes place. Herein, we study the effect of subsurface solute metals on the reactivity of Pt, using a Cu/Pt(111) near-surface alloy. Our investigations incorporate electrochemical measurements, ultrahigh vacuum experiments, and density functional theory. Changes to the OH binding energy, ΔE(OH), were monitored in situ and adjusted continuously through the subsurface Cu coverage. The incorporation of submonolayer quantities of Cu into Pt(111) resulted in an 8-fold improvement in oxygen reduction activity. The most optimal catalyst for oxygen reduction has an ΔE(OH) ≈ 0.1 eV weaker than that of pure Pt, validating earlier theoretical predictions.


Subject(s)
Alloys/chemistry , Oxygen/chemistry , Platinum/chemistry , Copper/chemistry , Electrochemistry , Models, Molecular , Molecular Conformation , Oxidation-Reduction , Surface Properties
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