The practical application of electrochemical water splitting has been plagued by the sluggish kinetics of bubble generation and the slow escape of bubbles which block reaction surfaces at high current densities. Here, 3D-printed Ni (3DP Ni) electrodes with a rationally designed periodic structure and surface chemistry are reported, where the macroscopic ordered pores allow fast bubble evolution and emission, while the microporosity ensures a high electrochemically active surface area (ECSA). When they are further loaded with MoNi4 and NiFe layered double hydroxide active materials, the 3D electrodes deliver 500 mA cm–2 at an overpotential of 104 mV for the hydrogen evolution reaction (HER) and 310 mV for the oxygen evolution reaction (OER),...
Highly efficient and low-cost electrocatalysts are essential for water spitting via electrolysis in ...
The construction of transition metal alloys with 3D structure facilitates their catalytic activity t...
As shown in the Figure below, the alkaline water electrolysis performance obtained in this work sign...
The practical application of electrochemical water splitting has been plagued by the sluggish kineti...
The electrolysis of water to produce hydrogen and oxygen is a simple and attractive approach to stor...
A zero-gap cell with porous electrodes is a promising configuration for alkaline water electrolysis....
[EN] Alkaline water electrolysis is one of the easiest methods for hydrogen production, offering the...
The enormous advancements made recently in additive manufacturing require parallel development of ne...
Hydrogen is a promising and well-accepted energy vector to store electricity produced by intermitten...
3D printing offers an attractive approach in fabricating complex designs across a wide range of mate...
Additive manufacturing (AM) is reaching a stage of development that enables high throughput fabricat...
Hydrogen has become now a well-accepted energy vector to store electricity produced by intermittent ...
Three dimensional electrodes have been widely used until now for environmental applications such as ...
Three dimensional electrodes have been widely used until now for environmental applications such as ...
Three-dimensional (3D) printed, hierarchically porous nickel molybdenum (NiMo) electrocatalysts were...
Highly efficient and low-cost electrocatalysts are essential for water spitting via electrolysis in ...
The construction of transition metal alloys with 3D structure facilitates their catalytic activity t...
As shown in the Figure below, the alkaline water electrolysis performance obtained in this work sign...
The practical application of electrochemical water splitting has been plagued by the sluggish kineti...
The electrolysis of water to produce hydrogen and oxygen is a simple and attractive approach to stor...
A zero-gap cell with porous electrodes is a promising configuration for alkaline water electrolysis....
[EN] Alkaline water electrolysis is one of the easiest methods for hydrogen production, offering the...
The enormous advancements made recently in additive manufacturing require parallel development of ne...
Hydrogen is a promising and well-accepted energy vector to store electricity produced by intermitten...
3D printing offers an attractive approach in fabricating complex designs across a wide range of mate...
Additive manufacturing (AM) is reaching a stage of development that enables high throughput fabricat...
Hydrogen has become now a well-accepted energy vector to store electricity produced by intermittent ...
Three dimensional electrodes have been widely used until now for environmental applications such as ...
Three dimensional electrodes have been widely used until now for environmental applications such as ...
Three-dimensional (3D) printed, hierarchically porous nickel molybdenum (NiMo) electrocatalysts were...
Highly efficient and low-cost electrocatalysts are essential for water spitting via electrolysis in ...
The construction of transition metal alloys with 3D structure facilitates their catalytic activity t...
As shown in the Figure below, the alkaline water electrolysis performance obtained in this work sign...