Thursday, May 26, 2022
SCIENMAG: Latest Science and Health News
No Result
View All Result
  • Login
  • HOME PAGE
  • BIOLOGY
  • CHEMISTRY AND PHYSICS
  • MEDICINE
    • Cancer
    • Infectious Emerging Diseases
  • SPACE
  • TECHNOLOGY
  • CONTACT US
  • HOME PAGE
  • BIOLOGY
  • CHEMISTRY AND PHYSICS
  • MEDICINE
    • Cancer
    • Infectious Emerging Diseases
  • SPACE
  • TECHNOLOGY
  • CONTACT US
No Result
View All Result
Scienmag - Latest science news from science magazine
No Result
View All Result
Home SCIENCE NEWS Technology and Engineering

Development of metastable-phase advanced material synthesis technology

April 15, 2022
in Technology and Engineering
0
Share on FacebookShare on Twitter

Similar to the widespread interest in “graphite” and “diamond,” there is growing interest in metastable phases, which have different physical properties than those of stable phases. However, processes to fabricate metastable-phase materials are highly limited. Novel findings have been published about the development of a new metastable-phase synthesis method, which can drastically improve the physical properties of various materials.

The percentage of metastable-phase palladium hydrides (HCP) generated and content of hydrogen within the metastable phase

Credit: Korea Institute of Science and Technology

Similar to the widespread interest in “graphite” and “diamond,” there is growing interest in metastable phases, which have different physical properties than those of stable phases. However, processes to fabricate metastable-phase materials are highly limited. Novel findings have been published about the development of a new metastable-phase synthesis method, which can drastically improve the physical properties of various materials.

A research team led by Dr. Chun, Dong Won at the Clean Energy Research Division, Korea Institute of Science and Technology (KIST; President: Yoon, Seok Jin), announced that they successfully developed a new advanced metastable-phase palladium hydride (PdHx) material. Furthermore, they identified its growth mechanism and published it in the latest issue of Nature (IF 49.962), one of the world’s most authoritative journals in science and technology.

A metastable-phase material has more thermodynamic energy than that in the stable phase but requires substantial energy to attain the stable phase, unlike most other materials, which exist in the stable phase with low thermodynamic energy. The research team directly synthesized a metal hydride by growing a material that can store hydrogen under a suitable hydrogen atmosphere, without dispersing hydrogen within a metal. Notably, they successfully developed a metastable-phase metal hydride with a new crystal structure. Further, they confirmed that the developed metastable-phase material had good thermal stability and twice the hydrogen storage capacity of a stable-phase material.

To elucidate the theoretical basis and scientific evidence for these findings, the research team used atomic electron tomography, which reconstitutes 3D images from 2D electron microscope images for nanometer-sized crystals in a metal hydrate, for analysis. As a result, they demonstrated that the metastable phase was thermodynamically stable, identified the 3D structure of metastable-phase crystals, and suggested a new nanoparticle growth mechanism called “multi-stage crystallization.” This study holds significance as it reveals a new paradigm in metastable-phase-based material development when most research is focused on developing stable-phase materials.

Dr. Chun emphasized that “These study findings provide an important process to obtain source technology in the development of advanced alloy materials containing lightweight atoms. An additional study is expected to reveal a new paradigm in the development of metastable-phase-based eco-friendly energy materials that can store hydrogen and lithium. Similar to the Czochralski (CZ) method, which is used to produce single-crystal silicon, a key material in today’s semiconductor industry, it will be a source technology with great potential that will contribute to advanced material development.”

###

KIST was established in 1966 as the first government-funded research institute to establish a national development strategy based on science and technology and disseminate various industrial technologies to develop major industries. KIST is now raising Korean science and technology status through world-leading innovative research and development. For more information, please visit our website at https://eng.kist.re.kr/kist_eng_renew/

This study was supported by the KIST Institutional Program and the Creative Materials Discovery Program funded by the Ministry of Science and ICT (Minister: Lim, Hyesook).



Journal

Nature

DOI

10.1038/s41586-021-04391-5

Article Title

Metastable hexagonal close-packed palladium hydride in liquid cell TEM

Article Publication Date

23-Mar-2022

Tags: advanceddevelopmentmaterialmetastablephasesynthesistechnology
Share26Tweet16Share5ShareSendShare
  • Bronze Age Shoes

    Climate change reveals unique artefacts in melting ice patches

    68 shares
    Share 27 Tweet 17
  • Danish astrophysics student discovers link between global warming and locally unstable weather

    67 shares
    Share 27 Tweet 17
  • Long-duration energy storage beats the challenge of week-long wind-power lulls

    72 shares
    Share 29 Tweet 18
  • The Cinderella Project: The right to see yourself in the mirror and like what you see

    66 shares
    Share 26 Tweet 17
  • Simple, inexpensive diagnostic technology to combat global threat of African Swine Fever

    65 shares
    Share 26 Tweet 16
  • Tiny robotic crab is smallest-ever remote-controlled walking robot

    65 shares
    Share 26 Tweet 16
ADVERTISEMENT

About us

We bring you the latest science news from best research centers and universities around the world. Check our website.

Latest NEWS

Data contradict fears of COVID-19 vaccine effects on pregnancy and fertility

Charging a green future: Latest advancement in lithium-ion batteries could make them ubiquitous

Long-duration energy storage beats the challenge of week-long wind-power lulls

Subscribe to Blog via Email

Enter your email address to subscribe to this blog and receive notifications of new posts by email.

Join 188 other subscribers

© 2022 Scienmag- Science Magazine: Latest Science News.

No Result
View All Result
  • HOME PAGE
  • BIOLOGY
  • CHEMISTRY AND PHYSICS
  • MEDICINE
    • Cancer
    • Infectious Emerging Diseases
  • SPACE
  • TECHNOLOGY
  • CONTACT US

© 2022 Scienmag- Science Magazine: Latest Science News.

Welcome Back!

Login to your account below

Forgotten Password?

Retrieve your password

Please enter your username or email address to reset your password.

Log In
Posting....