Core- shell nanocatalysts have demonstrated potential as highly active low-Pt fuel cell cathodes for the oxygen reduction reaction (ORR); however, challenges remain in optimizing their surface and interfacial structures, which often exhibit undesirable structural degradation and poor durability. Here, we construct an unsupported nanoporous catalyst with a Pt- Pd shell of sub-nanometre thickness on Au, which demonstrates an initial ORR activity of 1.140Amg(Pt)(-1) at 0.9V. The activity increases to 1.471Amg(Pt)(-1) after 30,000 potential cycles and is stable over a further 70,000 cycles. Using aberration-corrected scanning transmission electron microscopy and atomically resolved elemental mapping, the origin of the activity change is reveale...
Ultra-low Pt catalysts with Pt(shell)-Au(core) nanostructure were prepared by seed mediate method fo...
Manipulating the surface structure of electrocatalysts at the atomic level is of primary importance ...
A series of Pt modified Pd/C catalysts (Pt/Pd/C) with different Pt/Pd molar ratio (Pt:Pd = 1:4, 1:2 ...
Fabricating Pt-alloy and core-shell nanostructures with Au NPs in the cores are considered as two ge...
The oxygen reduction reaction (ORR) on the cathode of a polymer electrolyte fuel cell requires the u...
The oxygen reduction reaction (ORR) is a performance-dictating cathodic reaction in polymer electrol...
Through a bromide-induced galvanic replacement reaction between Pd nanowires and K2PtCl6, PtPd porou...
Development of highly active and durable electrocatalysts for oxygen reduction reaction (ORR) is of ...
We showed earlier that using Au nanoparticles of ca. 3.5 nm for the cores to construct core-shell Au...
Manipulating the surface structure of electrocatalysts at the atomic level is of primary importance ...
The oxygen reduction reaction (ORR) on the cathode of a polymer electrolyte fuel cell requires the u...
Manipulating the surface structure of electrocatalysts at the atomic level is of primary importance ...
Fuel cells are clean energy devices that are expected to help address the energy and environmental p...
Manipulating the surface structure of electrocatalysts at the atomic level is of primary importance ...
Au/Pt core shell nanoparticles (NPs) have been prepared via a layer-by-layer growth of Pt layers on ...
Ultra-low Pt catalysts with Pt(shell)-Au(core) nanostructure were prepared by seed mediate method fo...
Manipulating the surface structure of electrocatalysts at the atomic level is of primary importance ...
A series of Pt modified Pd/C catalysts (Pt/Pd/C) with different Pt/Pd molar ratio (Pt:Pd = 1:4, 1:2 ...
Fabricating Pt-alloy and core-shell nanostructures with Au NPs in the cores are considered as two ge...
The oxygen reduction reaction (ORR) on the cathode of a polymer electrolyte fuel cell requires the u...
The oxygen reduction reaction (ORR) is a performance-dictating cathodic reaction in polymer electrol...
Through a bromide-induced galvanic replacement reaction between Pd nanowires and K2PtCl6, PtPd porou...
Development of highly active and durable electrocatalysts for oxygen reduction reaction (ORR) is of ...
We showed earlier that using Au nanoparticles of ca. 3.5 nm for the cores to construct core-shell Au...
Manipulating the surface structure of electrocatalysts at the atomic level is of primary importance ...
The oxygen reduction reaction (ORR) on the cathode of a polymer electrolyte fuel cell requires the u...
Manipulating the surface structure of electrocatalysts at the atomic level is of primary importance ...
Fuel cells are clean energy devices that are expected to help address the energy and environmental p...
Manipulating the surface structure of electrocatalysts at the atomic level is of primary importance ...
Au/Pt core shell nanoparticles (NPs) have been prepared via a layer-by-layer growth of Pt layers on ...
Ultra-low Pt catalysts with Pt(shell)-Au(core) nanostructure were prepared by seed mediate method fo...
Manipulating the surface structure of electrocatalysts at the atomic level is of primary importance ...
A series of Pt modified Pd/C catalysts (Pt/Pd/C) with different Pt/Pd molar ratio (Pt:Pd = 1:4, 1:2 ...