Bluesky Facebook Reddit Email

Schottky junction catalysts boost hydrogen production with non-precious metals in water electrolysis

09.19.24 | KeAi Communications Co., Ltd.

Nikon Monarch 5 8x42 Binoculars

Nikon Monarch 5 8x42 Binoculars deliver bright, sharp views for wildlife surveys, eclipse chases, and quick star-field scans at dark sites.


Electricity-driven water electrolysis has garnered notable attention as an environmentally friendly method for hydrogen production, with high-purity hydrogen being crucial for addressing the energy crisis. Nonetheless, water electrolysis hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) typically require precious metals as electrocatalysts. This limitation has prompted researchers to focus on developing effective non-precious metal catalysts to enhance both the efficiency and cost-effectiveness of water electrolysis.

Carbon nitride(g-C 3 N 4 ) has been widely studied for its tunable semiconducting properties; however, its limited charge mobility and low specific surface area lead to poor catalytic activities for HER and OER. In a study published in the KeAi journal Advanced Powder Materials , a team of researchers from Xi'an University of Architecture and Technology in China developed two active Schottky junction electrocatalysts (B–C 3 N 4 @Fe 3 C and S–C 3 N 4 @Fe 3 C) using a targeted doping and an interfacial coupling strategy.

“A strategy that rationally constructs built-in electric fields and space charge regions to enhance the redox reaction kinetics on g-C 3 N 4 hollow nanotubes was first proposed,” shared the study’s senior corresponding author Sining Yun.

The team’s efforts confirmed that internally supported g-C 3 N 4 hollow nanotubes possess abundant active regions that facilitate rapid proton and mass transfer.

“Directed doping with B and S precisely modulated the semiconducting properties of g-C 3 N 4 , resulting in the formation of typical n-type and p-type band structures,” continued Yun. “This modulation provided a superior platform for constructing surface-functionalized B-C 3 N 4 @Fe 3 C and S-C 3 N 4 @Fe 3 C Schottky junction catalysts.”

The results revealed that the coupling of Fe 3 C and g-C 3 N 4 optimizes the energy level of g-C 3 N 4 and changes the interfacial charge distribution of g-C 3 N 4 @Fe 3 C, thus enriching OH - and H + at the solid-liquid reaction interface. Notably, B-C 3 N 4 @Fe 3 C and S-C 3 N 4 @Fe 3 C catalysts exhibited stable HER activity and high selectivity for the OER under alkaline medium.

“The B-C 3 N 4 @Fe 3 C||S-C 3 N 4 @Fe 3 C pair requires only a low voltage of 1.52 V to achieve efficient water electrolysis at 10 mA cm -2 , highlighting their excellent electrocatalytic activity and promising stability under long-term alkaline water splitting conditions,” said Guangping Yang, first author of the study.

###

Contact the author: Sining Yun yunsining@xauat.edu.cn

Functional Materials Laboratory (FML), School of Materials Science and Engineering, Xi’an University of Architecture and Technology, Xi’an, Shaanxi, 710055, China.

The publisher KeAi was established by Elsevier and China Science Publishing & Media Ltd to unfold quality research globally. In 2013, our focus shifted to open access publishing. We now proudly publish more than 100 world-class, open access, English language journals, spanning all scientific disciplines. Many of these are titles we publish in partnership with prestigious societies and academic institutions, such as the National Natural Science Foundation of China (NSFC).

Advanced Powder Materials

10.1016/j.apmate.2024.100224

Experimental study

Not applicable

Targeted doping induces interfacial orientation for constructing surface-functionalized Schottky junctions to coordinate redox reactions in water electrolysis.

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

Keywords

Article Information

Contact Information

Ye He
KeAi Communications Co., Ltd.
cassie.he@keaipublishing.com

How to Cite This Article

APA:
KeAi Communications Co., Ltd.. (2024, September 19). Schottky junction catalysts boost hydrogen production with non-precious metals in water electrolysis. Brightsurf News. https://www.brightsurf.com/news/8Y4D436L/schottky-junction-catalysts-boost-hydrogen-production-with-non-precious-metals-in-water-electrolysis.html
MLA:
"Schottky junction catalysts boost hydrogen production with non-precious metals in water electrolysis." Brightsurf News, Sep. 19 2024, https://www.brightsurf.com/news/8Y4D436L/schottky-junction-catalysts-boost-hydrogen-production-with-non-precious-metals-in-water-electrolysis.html.