Close Menu
geekfence.comgeekfence.com
    What's Hot

    Wilkie refers gambling concerns to anti-corruption commission

    August 13, 2026

    Lumen ready for AI traffic rush – with programmable fabric and “more fiber than anyone”

    August 13, 2026

    With a feel for physics, AI models simulate a wider range of real-world scenarios | MIT News

    August 13, 2026
    Facebook X (Twitter) Instagram
    • About Us
    • Contact Us
    Facebook Instagram
    geekfence.comgeekfence.com
    • Home
    • UK Tech News
    • AI
    • Big Data
    • Cyber Security
      • Cloud Computing
      • iOS Development
    • IoT
    • Mobile
    • Software
      • Software Development
      • Software Engineering
    • Technology
      • Green Technology
      • Nanotechnology
    • Telecom
    geekfence.comgeekfence.com
    Home»Nanotechnology»Understanding core-shell nanoparticle growth – Physics World
    Nanotechnology

    Understanding core-shell nanoparticle growth – Physics World

    AdminBy AdminAugust 1, 2026No Comments2 Mins Read5 Views
    Facebook Twitter Pinterest LinkedIn Telegram Tumblr Email
    Understanding core-shell nanoparticle growth – Physics World
    Share
    Facebook Twitter LinkedIn Pinterest Email


    A study of platinum-coated nanoparticles shows how energy balance controls crystal growth

    Glass beads

    Glass beads (Courtesy: Shutterstock/Schmidt)

    Many catalysts are made using core-shell nanoparticles, in which the core is a structurally important or inexpensive material and the thin shell surrounding it is an expensive metal such as platinum. Since catalytic reactions occur on the surface, this helps to reduce the amount of platinum required and therefore lowers costs. Crystal structures are described based on the smallest repeating unit of the crystal (the unit cell) using the Bravais lattice system. Three important crystal structures are face-centred cubic (fcc, atoms at the corners and faces of a cube), body-centred cubic (bcc, atoms at the corners and centre of a cube), and hexagonal close-packed (hcp, a hexagonal arrangement of atoms).

    Different materials have different crystal structures; for example, platinum is fcc, many alloys are bcc, and magnesium and zinc are hcp. In core–shell nanoparticles, differences between the crystal structures of the core and shell mean that the atoms do not line up perfectly. This mismatch creates strain, which can significantly affect catalytic performance. In this work, the researchers explored how a platinum shell grows on a different crystal structure in a process known as heteroepitaxy.

    They studied platinum shells (Pt, fcc) grown on cores made of ruthenium (Ru, hcp), palladium–copper (PdCu, bcc), and specially synthesised ruthenium with an fcc structure. It was found that each system accommodates the atomic mismatch differently. In hcp/fcc particles, some areas lined up coherently while others contained defects called dislocations, which formed networks in particles smaller than 10 nm. In bcc/fcc particles, both the core and shell stretched or compressed to fit together. In fcc/fcc particles, the matching crystal structures aligned more readily, but twin defects formed in which one region mirrored another.

    Overall, this study shows that the way a Pt shell grows on a nanoparticle core is determined by a balance between the energies of the interface, shell, and core, with the system naturally adopting the lowest-energy configuration. These findings could help scientists achieve atomic-precision interfacial engineering, controlling the catalytic, mechanical, and electrical properties of core-shell nanoparticles.

    Do you want to learn more about this topic?

    PLP-Logo-2.png, find out more. Single metal nanoparticles: optical detection, spectroscopy and applications by P Zijlstra and M Orrit (2011)



    Source link

    Share. Facebook Twitter Pinterest LinkedIn Tumblr Email

    Related Posts

    A programmable DNA origami nanosyringe for directed membrane translocation

    August 12, 2026

    Magnetic molecules explain a puzzling material – Physics World

    August 11, 2026

    Pomegranate Peel Nanomaterials Give TiO₂ New Control Over CO₂ Reduction

    August 10, 2026

    New fuel cell breakthrough could help power energy-hungry data centers

    August 9, 2026

    Spectral biophysical cytometry with nanosensors reveals remodelling of immune cells in atherosclerosis

    August 7, 2026

    Kristian Dominek Barajas – ‘I’m able to take a really complicated problem and give it my best guess’ – Physics World

    August 6, 2026
    Top Posts

    Understanding U-Net Architecture in Deep Learning

    November 25, 202579 Views

    The Next Paradigm in Efficient Inference Scaling – The Berkeley Artificial Intelligence Research Blog

    May 16, 202644 Views

    Is it too late to start learning AI and machine learning in my 30s or 40s?

    April 9, 202641 Views
    Don't Miss

    Wilkie refers gambling concerns to anti-corruption commission

    August 13, 2026

    Independent MP Andrew Wilkie has taken the fight over gambling reform to the National Anti-Corruption…

    Lumen ready for AI traffic rush – with programmable fabric and “more fiber than anyone”

    August 13, 2026

    With a feel for physics, AI models simulate a wider range of real-world scenarios | MIT News

    August 13, 2026

    Monitoring beyond SNMP: Turning your network into a sensor

    August 13, 2026
    Stay In Touch
    • Facebook
    • Instagram
    About Us

    At GeekFence, we are a team of tech-enthusiasts, industry watchers and content creators who believe that technology isn’t just about gadgets—it’s about how innovation transforms our lives, work and society. We’ve come together to build a place where readers, thinkers and industry insiders can converge to explore what’s next in tech.

    Our Picks

    Wilkie refers gambling concerns to anti-corruption commission

    August 13, 2026

    Lumen ready for AI traffic rush – with programmable fabric and “more fiber than anyone”

    August 13, 2026

    Subscribe to Updates

    Please enable JavaScript in your browser to complete this form.
    Loading
    • About Us
    • Contact Us
    • Disclaimer
    • Privacy Policy
    • Terms and Conditions
    © 2026 Geekfence.All Rigt Reserved.

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