Amorphous silicon and transition metal oxide catalyst resists acid corrosion while lowering voltage requirements for efficient hydrogen production.
A multi-layer electrode uses a ruthenium oxide base and platinum-palladium alloy to achieve low overvoltage.
Composite oxide coatings on titanium substrates maintain active chlorine generation efficiency in dilute sodium chloride solutions at low temperatures.
Nitrogen-doped titanium oxide nanotubes replace organic solvents in electrochemical cells, eliminating anthraquinone waste while sustaining industrial output.
Nickel oxide nanoparticles partially cover nickel cores on carbon nanotubes, reducing overpotential while maintaining stability against platinum scarcity.
Fluoride-buffered cobalt oxide coatings reduce overpotential and improve stability in mildly acidic electrolysis.
A crosslinked polymer binder enhances electrode adhesion and lithium ion conductivity in nonaqueous electrolyte secondary batteries.
A ruthenium-rich catalytic coating on titanium substrates improves voltage efficiency in zinc-bromine flow batteries.
Composite iron-based metal oxides convert carbon dioxide to acetate and formate, resolving stability and selectivity trade-offs in electrochemical cells.
Polymer active layer confines CO2 reduction catalyst and activator to enhance selectivity for targeted organic fuels.
Nanoporous transition metal oxide coatings on conductive supports lower the overpotential required for water electrolysis.
Ga selenide photocatalysts raise valence band maximums to overcome low water splitting activity in copper-based materials.