Build a lasting personal brand

Carbon-Encapsulated Ruthenium Catalyst Enables Low-Energy Hydrogen Production with Simultaneous Wastewater Treatment

By Editorial Staff

TL;DR

A new ruthenium-carbon catalyst from Gyeongsang National University enables hydrogen production at dramatically lower voltages, offering substantial energy cost savings for green energy systems.

The Ru@C-200 catalyst uses laser-engineered ruthenium nanospheres in carbon shells to achieve ultralow overpotentials for hydrogen evolution and hydrazine oxidation reactions simultaneously.

This technology combines clean hydrogen fuel generation with purification of toxic hydrazine pollutants, creating a dual solution for energy and environmental challenges.

Researchers created a catalyst that powers hydrogen production while cleaning wastewater, demonstrated in a self-powered zinc-hydrazine battery that runs for 600 cycles.

Found this article helpful?

Share it with your network and spread the knowledge!

Carbon-Encapsulated Ruthenium Catalyst Enables Low-Energy Hydrogen Production with Simultaneous Wastewater Treatment

A research team from Gyeongsang National University has developed a pulsed-laser-fabricated ruthenium@carbon catalyst that significantly enhances the efficiency of hydrazine-assisted hydrogen production. Published in eScience with DOI 10.1016/j.esci.2025.100408, the study demonstrates how the optimized Ru@C-200 catalyst achieves ultralow overpotentials for both hydrogen evolution and hydrazine oxidation, addressing two critical challenges in sustainable energy systems.

Hydrogen is expected to play a central role in future carbon-neutral energy systems, but conventional water electrolysis is hindered by the slow and energy-intensive oxygen evolution reaction. Replacing this step with hydrazine oxidation significantly reduces the voltage needed for hydrogen production while converting hydrazine—an industrial pollutant—into harmless nitrogen. The researchers synthesized the ruthenium@carbon material using a pulsed-laser ablation-in-liquid strategy that produced uniform Ru nanospheres encapsulated within graphitic carbon shells, with Ru@C-200 displaying the most favorable balance of conductivity, structural stability, and electronically coupled metal-carbon interfaces.

This optimized design enabled a low overpotential of 48 mV for hydrogen evolution and only 8 mV for hydrazine oxidation at 10 mA cm⁻², far outperforming conventional electrocatalysts. Comprehensive characterization confirmed the fcc-structured metallic Ru core and enhanced ordering of the carbon shell at higher laser energies. In situ analyses revealed that metallic Ru sites are responsible for hydrogen evolution, whereas surface-generated RuOOH species drive hydrazine oxidation.

When tested in a hydrazine-splitting electrolyzer, a Ru@C-200‖Ru@C-200 pair required only 0.11 V to achieve 10 mA cm⁻² and maintained stability for over 100 hours. The team further demonstrated a rechargeable Zn–hydrazine battery capable of powering hydrogen production independently, achieving 90% energy efficiency and remaining stable across 600 charge–discharge cycles. These results underscore how engineered Ru–C interfaces simultaneously improve activity, selectivity, and durability for both anodic and cathodic reactions.

The Ru@C-based catalytic system provides a compelling route for hydrogen production at voltages dramatically lower than those required for traditional electrolysis, offering substantial energy savings. Its ability to completely oxidize hydrazine while generating hydrogen positions it as a practical solution for industries that manage hydrazine-rich wastewater. The successful coupling with a rechargeable Zn–hydrazine battery illustrates a self-powered model in which hydrogen production, waste treatment, and energy storage occur simultaneously. This approach may accelerate the adoption of safer, more efficient hydrogen infrastructures and inspire new hydrazine-assisted technologies tailored for clean energy conversion and environmental remediation.

Curated from 24-7 Press Release

blockchain registration record for this content
Editorial Staff

Editorial Staff

@editorial-staff

Newswriter.ai is a hosted solution designed to help businesses build an audience and enhance their AIO and SEO press release strategies by automatically providing fresh, unique, and brand-aligned business news content. It eliminates the overhead of engineering, maintenance, and content creation, offering an easy, no-developer-needed implementation that works on any website. The service focuses on boosting site authority with vertically-aligned stories that are guaranteed unique and compliant with Google's E-E-A-T guidelines to keep your site dynamic and engaging.