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Synergistic heterojunction breakthrough: Scientists develop high-efficiency catalyst for green hydrogen production

05.07.26 | Shanghai Jiao Tong University Journal Center

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As the world shifts toward carbon neutrality, green hydrogen produced via electrochemical water splitting has become a cornerstone of sustainable energy research. However, the slow kinetics of the oxygen evolution reaction (OER) and the high cost of noble metal catalysts (like platinum and ruthenium oxide) remain major bottlenecks.

In a study recently published in the journal ENGINEERING Energy , a research team from Fuzhou University has reported a significant breakthrough. They successfully synthesized a bifunctional electrocatalyst consisting of cobalt phosphide (CoP/Co 2 P) heterojunctions anchored on nitrogen and phosphorus-doped hollow carbon nanorods (N,P-HCNRs). This innovative architecture enables efficient and stable hydrogen production at a fraction of the cost of traditional materials.

The Power of the Heterojunction

The core of this breakthrough lies in the "heterojunction" interface—the boundary where two different cobalt phosphide phases (CoP/Co 2 P) meet.

"The integration of CoP/Co2P creates a unique electronic environment," explain research team. "The electronic interaction at the interface generates an internal electric field that accelerates charge transfer and optimizes the adsorption energy of reaction intermediates. This makes it much easier for water molecules to break apart and form hydrogen and oxygen gas."

Engineering at the Nano-Scale

To maximize performance, the team grew these heterojunctions on N,P-doped hollow carbon nanorods. This specific support structure provides three critical advantages:

Exceptional Performance and Durability

The experimental results are highly promising. The CoP/Co 2 P @N,P-HCNRs catalyst requires remarkably low overpotentials—just 127.6 mV for the hydrogen evolution reaction (HER) and 279.4 mV for the OER to reach a current density of 10 mA/cm 2 in alkaline conditions.

When used as both the anode and cathode in a complete water-splitting cell, the system required a cell voltage of only 1.63 V to achieve 10 mA/cm 2 . Furthermore, the catalyst demonstrated excellent long-term stability, maintaining its performance for over 20 hours of continuous operation without significant degradation.

Impact on the Hydrogen Economy

This research provides a clear roadmap for designing high-performance, non-precious metal catalysts. By precisely controlling the interface between different transition metal phosphides, researchers can achieve activities that rival or even surpass expensive commercial catalysts.

"Our work demonstrates that interfacial engineering is a powerful tool for overcoming the kinetic barriers of water splitting," say research team. "This brings us one step closer to making large-scale, affordable green hydrogen production a reality."

Journal: ENGINEERING Energy

Read the full article for free: https://rdcu.be/ffxuF

Cite this article: Yao, J., Li, L., Liu, H. et al. Construction of CoP/Co 2 P heterojunctions on hollow carbon rods as efficient bifunctional electrocatalysts for overall water splitting. ENG. Energy 20 , 10624 (2026). https://doi.org/10.1007/s11708-026-1062-4

ENGINEERING Energy

10.1007/s11708-026-1062-4

News article

Construction of CoP/Co2P heterojunctions on hollow carbon rods as efficient bifunctional electrocatalysts for overall water splitting

10-Apr-2026

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Bowen Li
Shanghai Jiao Tong University Journal Center
qkzx@sjtu.edu.cn

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How to Cite This Article

APA:
Shanghai Jiao Tong University Journal Center. (2026, May 7). Synergistic heterojunction breakthrough: Scientists develop high-efficiency catalyst for green hydrogen production. Brightsurf News. https://www.brightsurf.com/news/8X5Y53O1/synergistic-heterojunction-breakthrough-scientists-develop-high-efficiency-catalyst-for-green-hydrogen-production.html
MLA:
"Synergistic heterojunction breakthrough: Scientists develop high-efficiency catalyst for green hydrogen production." Brightsurf News, May. 7 2026, https://www.brightsurf.com/news/8X5Y53O1/synergistic-heterojunction-breakthrough-scientists-develop-high-efficiency-catalyst-for-green-hydrogen-production.html.