Skip to main content

Research publications repository

    • čeština
    • English
  • English 
    • čeština
    • English
  • Login
View Item 
  •   CU Research Publications Repository
  • Fakulty
  • Faculty of Mathematics and Physics
  • View Item
  • CU Research Publications Repository
  • Fakulty
  • Faculty of Mathematics and Physics
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.

Impact of metastable graphene-diamond coatings on the fracture toughness of silicon carbide

original article
Creative Commons License IconCreative Commons BY Icon
published version
  • no other version
Thumbnail
File can be accessed.Get publication
Author
Rejhon, MartinORCiD Profile - 0000-0001-7775-487XWoS Profile - J-1461-2016Scopus Profile - 55925146800
Dědič, VáclavORCiD Profile - 0000-0001-7159-5521WoS Profile - A-2946-2017Scopus Profile - 36138618400
Shestopalov, MykhailoORCiD Profile - 0000-0003-4109-3197WoS Profile - JVN-5031-2024Scopus Profile - 57741492900
Kunc, JanORCiD Profile - 0000-0001-8197-0890WoS Profile - E-6436-2013Scopus Profile - 16316320900
Riedo, Elisa

Show other authors

Publication date
2024
Published in
Nanoscale
Volume / Issue
16 (22)
ISBN / ISSN
ISSN: 2040-3364
ISBN / ISSN
eISSN: 2040-3372
Metadata
Show full item record
Collections
  • Faculty of Mathematics and Physics

This publication has a published version with DOI 10.1039/d3nr06281c

Abstract
Silicon carbide has excellent mechanical properties such as high hardness and strength, but its applications for body armor and protective coating solutions are limited by its poor toughness. It has been demonstrated that epitaxial graphene-coated SiC can enhance SiC mechanical properties due to the pressure-activated phase transition into a sp(3) diamond structure. Here, we show that atomically thin graphene coatings increase the hardness of SiC even for indentation depths of similar to 10 µm. Very importantly, the graphene coating also causes an increase of the fracture toughness by 11% compared to bare SiC, which is in contradiction with the general indirect variation of hardness and fracture toughness. This is explained in terms of the presence of a diamond phase under the indenter while the rest of the coating remains in the ultra-tough graphene phase. This study opens new venues for understanding hardness and toughness in metastable systems and for the applications of graphene-coatings. The phase-transition of atomically thin graphene coating into a diamond phase increases the hardness and the fracture toughness of SiC even for indentation depths of 10 µm compared to bare SiC, which is against the general indirect relation.
Keywords
graphene-diamond coatings, silicon carbide, indentation fracture, crystal, moissanite, behavior, hardness
Permanent link
https://hdl.handle.net/20.500.14178/2941
Show publication in other systems
WOS:001187089300001
SCOPUS:2-s2.0-85188246781
PUBMED:38501162
License

Full text of this result is licensed under: Creative Commons Uveďte původ 3.0 Unported

Show license terms

xmlui.dri2xhtml.METS-1.0.item-publication-version-

DSpace software copyright © 2002-2016  DuraSpace
Contact Us | Send Feedback
Theme by 
Atmire NV
 

 

About Repository

About This RepositoryResearch outputs typologyRequired metadataDisclaimerCC Linceses

Browse

All of DSpaceCommunities & CollectionsWorkplacesBy Issue DateAuthorsTitlesSubjectsThis CollectionWorkplacesBy Issue DateAuthorsTitlesSubjects

DSpace software copyright © 2002-2016  DuraSpace
Contact Us | Send Feedback
Theme by 
Atmire NV