© 2018 American Chemical Society. Pursuing efficient and low-cost electrocatalysts is crucial for the performance of water-alkali electrolyzers toward water splitting. Earth-abundant transition-metal oxides, in spite of their alluring performances in the oxygen evolution reaction, are thought to be inactive in the hydrogen evolution reaction in alkaline media. Here, we demonstrate that pure TiO2 single crystals, a typical transition-metal oxide, can be activated toward electrocatalytic hydrogen evolution reaction in alkaline media through engineering interfacial oxygen vacancies. Experimental and theoretical results indicate that subsurface oxygen vacancies and low-coordinated Ti ions (Ti3+) can enhance the electrical conductivity and promo...
The large-scale deployment of proton-exchange membrane water electrolyzers for high-throughput susta...
In this opinion piece, we highlight and discuss beyond state-of-the-art transition metal oxide mater...
Abstract Stabilizing active sites of non-iridium-based oxygen evolution reaction (OER) electrocataly...
Pursuing efficient and low-cost electrocatalysts is crucial for the performance of water–alkali elec...
Electrochemical water splitting is one of the most efficient technologies for hydrogen production an...
Under the circumstance of urgent demand for clean, renewable hydrogen fuel on a global scale, large-...
Synergistic optimization of the elementary steps of water dissociation and hydrogen desorption for t...
Transition metal oxides exhibit strong structure-property correlations, which has been extensively i...
Cost-effective, efficient and stable electrocatalyst for water splitting in the acidic electrolyte m...
TiO2 has limited applicability as an alternative to noble metal electrocatalysts for the hydrogen ev...
This thesis presents a study of hydrogen evolution electrocatalyst for alkaline water electrolysis. ...
The energy crisis is one of the most serious issue that we confront today. Among different strategie...
The development of low-cost yet highly efficient catalysts for hydrogen evolution reaction (HER) is ...
Supplementary files for article Ru nanoparticles supported on partially reduced TiO2 as highly effic...
International audienceFly ash (FA) is a waste product generated in huge amounts by coal-fired electr...
The large-scale deployment of proton-exchange membrane water electrolyzers for high-throughput susta...
In this opinion piece, we highlight and discuss beyond state-of-the-art transition metal oxide mater...
Abstract Stabilizing active sites of non-iridium-based oxygen evolution reaction (OER) electrocataly...
Pursuing efficient and low-cost electrocatalysts is crucial for the performance of water–alkali elec...
Electrochemical water splitting is one of the most efficient technologies for hydrogen production an...
Under the circumstance of urgent demand for clean, renewable hydrogen fuel on a global scale, large-...
Synergistic optimization of the elementary steps of water dissociation and hydrogen desorption for t...
Transition metal oxides exhibit strong structure-property correlations, which has been extensively i...
Cost-effective, efficient and stable electrocatalyst for water splitting in the acidic electrolyte m...
TiO2 has limited applicability as an alternative to noble metal electrocatalysts for the hydrogen ev...
This thesis presents a study of hydrogen evolution electrocatalyst for alkaline water electrolysis. ...
The energy crisis is one of the most serious issue that we confront today. Among different strategie...
The development of low-cost yet highly efficient catalysts for hydrogen evolution reaction (HER) is ...
Supplementary files for article Ru nanoparticles supported on partially reduced TiO2 as highly effic...
International audienceFly ash (FA) is a waste product generated in huge amounts by coal-fired electr...
The large-scale deployment of proton-exchange membrane water electrolyzers for high-throughput susta...
In this opinion piece, we highlight and discuss beyond state-of-the-art transition metal oxide mater...
Abstract Stabilizing active sites of non-iridium-based oxygen evolution reaction (OER) electrocataly...