Great expectations have been held for the electrochemical splitting of water for producing hydrogen as a significant carbon-neutral technology aimed at solving the global energy crisis and greenhouse gas issues. However, the oxygen evolution reaction (OER) process must be energetically catalyzed over a long period at high output, leading to challenges for efficient and stable processing of electrodes for practical purposes. Here, we first prepared Fe-MOF nanosheet arrays on nickel foam via rare-earth erbium doping (Er0.4 Fe-MOF/NF) and applied them as OER electrocatalysts. The Er0.4 Fe-MOF/NF exhibited wonderful OER performance and could yield a 100 mA cm−2 current density at an overpotential of 248 mV with outstanding long-term electrochem...
Electrocatalytic water splitting is a feasible technology that can produce hydrogen from renewable s...
Highly active and stable electrocatalysts for oxygen evolution reaction (OER) are required for indus...
The electrocatalytic oxygen evolution reaction (OER) is a critical anode reaction often coupled with...
Oxygen evolution reaction (OER) involves multiple electron-transfer processes, resulting in a high a...
Oxygen evolution reaction (OER) involves multiple electron-transfer processes, resulting in a high a...
Developing highly active electrocatalysts with rich oxygen vacancies and precisely distributed metal...
Developing highly active electrocatalysts with rich oxygen vacancies and precisely distributed metal...
Developing highly active electrocatalysts with rich oxygen vacancies and precisely distributed metal...
Designing efficient electrocatalysts based on metal–organic framework (MOF) nanosheet arrays (MOFNAs...
Industrial water electrolysis requires highly-active and ampere-current-bearing oxygen evolution rea...
© 2018 American Chemical Society. There is a great challenge to employ an electrocatalyst that has h...
Industrial water electrolysis requires highly-active and ampere-current-bearing oxygen evolution rea...
Metal-organic frameworks (MOFs) have emerged as promising electrocatalysts due to their controllabil...
Oxygen evolution reaction (OER) plays a critical role in many renewable energy technologies includin...
Oxygen evolution reaction (OER) involves multiple electron-transfer processes, resulting in a high a...
Electrocatalytic water splitting is a feasible technology that can produce hydrogen from renewable s...
Highly active and stable electrocatalysts for oxygen evolution reaction (OER) are required for indus...
The electrocatalytic oxygen evolution reaction (OER) is a critical anode reaction often coupled with...
Oxygen evolution reaction (OER) involves multiple electron-transfer processes, resulting in a high a...
Oxygen evolution reaction (OER) involves multiple electron-transfer processes, resulting in a high a...
Developing highly active electrocatalysts with rich oxygen vacancies and precisely distributed metal...
Developing highly active electrocatalysts with rich oxygen vacancies and precisely distributed metal...
Developing highly active electrocatalysts with rich oxygen vacancies and precisely distributed metal...
Designing efficient electrocatalysts based on metal–organic framework (MOF) nanosheet arrays (MOFNAs...
Industrial water electrolysis requires highly-active and ampere-current-bearing oxygen evolution rea...
© 2018 American Chemical Society. There is a great challenge to employ an electrocatalyst that has h...
Industrial water electrolysis requires highly-active and ampere-current-bearing oxygen evolution rea...
Metal-organic frameworks (MOFs) have emerged as promising electrocatalysts due to their controllabil...
Oxygen evolution reaction (OER) plays a critical role in many renewable energy technologies includin...
Oxygen evolution reaction (OER) involves multiple electron-transfer processes, resulting in a high a...
Electrocatalytic water splitting is a feasible technology that can produce hydrogen from renewable s...
Highly active and stable electrocatalysts for oxygen evolution reaction (OER) are required for indus...
The electrocatalytic oxygen evolution reaction (OER) is a critical anode reaction often coupled with...