Close Menu
    Facebook X (Twitter) Instagram
    SciTechDaily
    • Biology
    • Chemistry
    • Earth
    • Health
    • Physics
    • Science
    • Space
    • Technology
    Facebook X (Twitter) Pinterest YouTube RSS
    SciTechDaily
    Home»Science»Scientists Clearer View of What Makes Glass Rigid May Lead to New Advances in High-Strength Glass
    Science

    Scientists Clearer View of What Makes Glass Rigid May Lead to New Advances in High-Strength Glass

    By Institute of Industrial Science, The University of TokyoOctober 4, 20201 Comment3 Mins Read
    Facebook Twitter Pinterest Telegram LinkedIn WhatsApp Email Reddit
    Share
    Facebook Twitter LinkedIn Pinterest Telegram Email Reddit
    Rigidity of Amorphous Solids Like Glass
    A team of scientists led by the University of Tokyo uses computer simulations to study the rigidity of amorphous solids like glass. Credit: Institute of Industrial Science, the University of Tokyo

    Researchers led by The University of Tokyo employed a new computer model to simulate the networks of force-carrying particles that give amorphous solids their strength even though they lack long-range order. This work may lead to new advances in high-strength glass, which can be used for cooking, industrial, and smartphone applications.

    Amorphous solids such as glass–despite being brittle and having constituent particles that do not form ordered lattices–can possess surprising strength and rigidity. This is even more unexpected because amorphous systems also suffer from large anharmonic fluctuations. The secret is an internal network of force-bearing particles that span the entire solid which lends strength to the system. This branching, dynamic network acts like a skeleton that prevents the material from yielding to stress even though it makes up only a small fraction of the total particles. However, this network only forms after a “percolation transition” when the number of force-bearing particles exceeds a critical threshold. As the density of these particles increases, the probability that a percolating network that goes from one end to the other increases from zero to almost certain.

    Now, scientists from the Institute of Industrial Science at The University of Tokyo have used computer simulations to carefully show the formation of these percolating networks as an amorphous material is cooled below its glass transition temperature. In these calculations, binary particle mixtures were modeled with finite-range repulsive potentials. The team found that the strength of amorphous materials is an emergent property caused by the self-organization of the disordered mechanical architecture.

    “At zero temperature, a jammed system will show long-range correlations in stress due to its internal percolating network. This simulation showed that the same is true for glass even before it has completely cooled,” first author Hua Tong says.

    The force-bearing backbone can be identified by recognizing that particles in this network must be connected by at least two strong force bonds. Upon cooling, the number of force-bearing particles increases, until a system-spanning network links together.

    “Our findings may open up a way towards a better understanding of amorphous solids from a mechanical perspective,” senior author Hajime Tanaka says. Since rigid, durable glass is highly prized for smartphones, tablets, and cookware, the work can find many practical uses.

    Reference: “Emergent solidity of amorphous materials as a consequence of mechanical self-organisation” by Hua Tong, Shiladitya Sengupta and Hajime Tanaka, 25 September 2020, Nature Communications.
    DOI: 10.1038/s41467-020-18663-7

    Never miss a breakthrough: Join the SciTechDaily newsletter.
    Follow us on Google and Google News.

    Materials Science University of Tokyo
    Share. Facebook Twitter Pinterest LinkedIn Email Reddit

    Related Articles

    20-Year Dream Comes True: Chemists Grow Diamonds With an Electron Beam

    Titanium Made Affordable: Japanese Scientists Unveil New Low-Cost Production Method

    A Shock to the PPE System: New Method for Recharging N95 Masks to Meet COVID Demand

    Graphite Foam Could Harness Energy from Temperature Gradient in Oceans

    Researchers Uncover Why Lithium Iron Phosphate Works So Well

    Self-Healing Polymer Mechanism Rediscovered After 60 Years

    Scientists Make 3D Objects Invisible to Microwave Wavelengths

    Graphene is Transparent to Water

    Research for High Pressure Materials for DoD Underway

    1 Comment

    1. Marcelo Eduardo Sauaf on October 28, 2020 11:54 am

      So.. what exactly are these “force bearing” “particles”?

      Reply
    Leave A Reply Cancel Reply

    • Facebook
    • Twitter
    • Pinterest
    • YouTube

    Don't Miss a Discovery

    Subscribe for the Latest in Science & Tech!

    Trending News

    JWST Finds a “Star” 100 Billion Times Brighter Than Any Star Should Be

    Scientists Find a Hidden Biological Link Across Different Forms of Autism

    Astronomers Discover a Ghostly River of Stars That Could Reveal Dark Matter

    Why Is Colorectal Cancer Rising in People Under 50? New Clues Point to the Environment

    Quantum Fluctuations Break a Crystal’s Symmetry Rules

    Why Does an Irregular Heartbeat Strike 40 Years Early in Some People?

    Scientists Reveal How ADHD Could Fuel Creative Thinking

    Scientists Find Just 3 Minutes of Sprinting Can Transform Blood Chemistry

    Follow SciTechDaily
    • Facebook
    • Twitter
    • YouTube
    • Pinterest
    • Newsletter
    • RSS
    SciTech News
    • Biology News
    • Chemistry News
    • Earth News
    • Health News
    • Physics News
    • Science News
    • Space News
    • Technology News
    Recent Posts
    • Hidden Brain Wiring May Help Preserve Thinking As Gray Matter Shrinks
    • Dual Stem Cell Treatment Restores Vision in First Human Trial
    • Your Waist Size May Reveal More About Your Health Than You Think
    • AI Decodes a Hidden DNA Signal Linked to Disease-Causing Mutations
    • Billions of Invasive Fish Have Taken Over the Great Lakes. Scientists Say We Can Still Stop Their Next Invasion
    Copyright © 1998 - 2026 SciTechDaily. All Rights Reserved.
    • Science News
    • About
    • Contact
    • Editorial Board
    • Privacy Policy
    • Terms of Use

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