Close Menu
  • News
    • Medical
    • Nanomaterials
    • AI & Robotics
    • 2D Materials
    • Metamaterials
    • Nanoelectronics
    • ETF’s
    • Medicine
  • Environment
    • Earth.com
    • TreeHugger
    • Nanomuscle
  • Beauty
    • Makeupanalysis
What's Hot

Biomass-Derived Nanomaterials Offer a Greener Route to Pollution Cleanup

September 1, 2026

Nanozyme Aptasensors Show Promise for Faster Food, Health, and Environmental Testing

September 1, 2026

Researchers Solve Two Major Problems Holding Back SiC Electronics

September 1, 2026
Facebook X (Twitter) Instagram
  • Contact Us
  • Privacy Policy
  • Terms & Conditions
Facebook X (Twitter) Instagram
Elnano – Global Innovative Nanotechnology SolutionsElnano – Global Innovative Nanotechnology Solutions
  • News
    • Medical
    • Nanomaterials
    • AI & Robotics
    • 2D Materials
    • Metamaterials
    • Nanoelectronics
    • ETF’s
    • Medicine
  • Environment
    • Earth.com
    • TreeHugger
    • Nanomuscle
  • Beauty
    • Makeupanalysis
Elnano – Global Innovative Nanotechnology SolutionsElnano – Global Innovative Nanotechnology Solutions
Home » A Leap for Green Hydrogen Catalysts with Nano Sheet to Rod Shift
Nanotech

A Leap for Green Hydrogen Catalysts with Nano Sheet to Rod Shift

October 22, 2025No Comments3 Mins Read
Share
Facebook Twitter LinkedIn Pinterest Email

A structural flip at the nanoscale unlocks powerful gains in catalytic speed and stability for clean hydrogen generation.

Graphene nanosheet wavy to imply morphological changes. Image Credit: Litvinova Oxana/Shutterstock.com

A recent study published in Materials and Interfaces introduced a new strategy to enhance oxygen evolution reaction (OER) catalysis, a key process in green hydrogen production.

By reshaping nanostructures at the atomic level, researchers transformed NiCoMoSeOx nanosheets into nanorods, significantly improving both catalytic activity and long-term stability.

Electrocatalysts with nanoscale features are essential for efficient water splitting, especially in alkaline conditions where OER performance is often a bottleneck. Two-dimensional (2D) nanosheets provide a large surface area and active sites, while one-dimensional (1D) nanorods offer improved charge transport.

Being able to shift between these morphologies could unlock better catalytic performance, but how this transformation affects structure and function is not fully understood.

Time-Dependent Morphological Change

The team synthesized selenium nanoparticles (~37.5 nm) as sacrificial templates and used a galvanic replacement reaction at 70 °C to form NiCoMoSeOx nanosheets. By extending the reaction time from three to 24 hours, the nanosheets gradually evolved into uniform nanorods.

STEM and TEM imaging revealed a progression from amorphous, wrinkled sheets to highly crystalline rod-like structures.

Elemental analysis confirmed that Ni, Co, Mo, Se, and O were evenly distributed throughout the nanorods. The transformation also led to increased oxygen content and a shift in oxidation states, as shown by XPS, indicating chemical as well as structural evolution.

Want all the details? Grab your PDF here!

Stronger, Faster, and More Stable

This morphological shift had a dramatic effect on performance. Compared to nanosheets, nanorods exhibited a much lower overpotential at 10 mA/cm2, dropping from roughly 383 mV to 260 mV, indicative of improved catalytic efficiency. 

See also  Nickel nanowires in plasma-treated nanotubes boost hydrogen production from urea

Electrochemical impedance spectroscopy showed charge transfer resistance fell from about 13.26 to 7.15 Ω cm2, reflecting enhanced electron mobility.

The nanorods were also more durable. Stability tests revealed a minimal degradation rate of just 1.468 mV/h at 300 mA/cm2 over 200 hours, outperforming the nanosheets, which showed structural fluctuations under similar conditions.

In situ ATR-SEIRAS spectroscopy offered further clues about the enhanced activity. The nanorods demonstrated stronger hydroxyl (OH) adsorption due to more accessible OH groups, especially at potentials below 1.4 V. This interaction is hypothesized to play a key role in accelerating the OER process.

Importantly, the presence of low-valence molybdenum (Mo) species helped protect the structure by limiting selenium (Se) leaching, further supporting long-term stability.

Toward Smarter Catalyst Design

This work highlights the power of nanoscale engineering, not just tweaking composition, but rethinking entire structures. The transition from 2D to 1D forms creates more ordered, conductive catalysts for alkaline OER.

As industries look to scale green hydrogen technologies, such findings could inform the design of next-generation electrocatalysts. Future research may explore whether similar morphological tuning can improve other catalytic systems or electrochemical processes.

Journal Reference

Luo J., et al. (2025). Morphological Transformation of NiCoMoSeOx from Nanosheets to Nanorods for Enhanced Oxygen Evolution. Materials Interfaces, 2(4), 375–387. DOI: 10.53941/mi.2025.100029, https://www.sciltp.com/journals/mi/articles/2510001673

Source link

Catalysts Green hydrogen Leap Nano Rod Sheet Shift
Share. Facebook Twitter Pinterest LinkedIn Tumblr Email

Related Posts

New Versatile Nanoplatelet Platform Optimizes Tumor Imaging and Cancer Destruction

September 1, 2026

IBM debuts world’s first sub-1 nanometre chip technology

August 31, 2026

Atom-by-atom manufacturing takes a step forward

August 31, 2026

Pittcon Announces 2025 Nobel Laureate, Dr. Omar Yaghi, as Wallace H. Coulter Keynote Lecturer

August 31, 2026
Add A Comment

Comments are closed.

Top Posts

Study Shows a Plasmon-Induced Route to Advanced Hybrid Nanomaterials

October 14, 2025

Rapid Biomimetic Nanovaccine for Personalized Cancer Therapy

September 20, 2025

Giant resistivity reduction in thin film provides key step towards next-gen AI electronics

November 4, 2025

Subscribe to Updates

Get the latest sports news from SportsSite about soccer, football and tennis.

Explore the future with our Nanotech blog—covering innovations, research, applications, and breakthroughs shaping science, medicine, and modern technology.

We're social. Connect with us:

Facebook X (Twitter) Instagram YouTube
Top Insights

Biomass-Derived Nanomaterials Offer a Greener Route to Pollution Cleanup

September 1, 2026

Nanozyme Aptasensors Show Promise for Faster Food, Health, and Environmental Testing

September 1, 2026

Researchers Solve Two Major Problems Holding Back SiC Electronics

September 1, 2026

Subscribe to Updates

Get the latest creative news from FooBar about art, design and business.

  • Contact Us
  • Privacy Policy
  • Terms & Conditions

© 2026 elnano.com - All rights reserved.

Type above and press Enter to search. Press Esc to cancel.