• English
  • Deutsch
  • Log In
    Password Login
    Research Outputs
    Fundings & Projects
    Researchers
    Institutes
    Statistics
Repository logo
Fraunhofer-Gesellschaft
  1. Home
  2. Fraunhofer-Gesellschaft
  3. Scopus
  4. In Situ Pyrolysis of 3D Printed Building Blocks for Functional Nanoscale Metamaterials
 
  • Details
  • Full
Options
2024
Journal Article
Title

In Situ Pyrolysis of 3D Printed Building Blocks for Functional Nanoscale Metamaterials

Abstract
This study presents a novel approach for investigating the shrinkage dynamics of 3D-printed nanoarchitectures during isothermal pyrolysis, utilizing in situ electron microscopy. For the first time, the temporal evolution of 3D structures is tracked continuously until a quasi-stationary state is reached. By subjecting the 3D objects to different temperatures and atmospheric conditions, significant changes in the resulting kinetic parameters and morphological textures of the 3D objects are observed, particularly those possessing varying surface-to-volume ratios. Its results reveal that the effective activation energy required for pyrolysis-induced morphological shrinkage is approximately four times larger under vacuum conditions than in a nitrogen atmosphere (2.6 eV vs. 0.5-0.9 eV, respectively). Additionally, a subtle enrichment of oxygen on the surfaces of the structures for pyrolysis in nitrogen is found through a postmortem electron energy loss spectroscopy study, differentiating the vacuum pyrolysis. These findings are examined in the context of the underlying process parameters, and a mechanistic model is proposed. As a result, understanding and controlling pyrolysis in 3D structures of different geometrical dimensions not only enables precise modification of shrinkage and the creation of tensegrity structures, but also promotes pyrolytic carbon development with custom architectures and properties, especially in the field of carbon micro- and nano-electromechanical systems.
Author(s)
Quing, Sun
Karlsruhe Institute of Technology -KIT-  
Dolle, Christian
Karlsruhe Institute of Technology -KIT-  
Kurpiers, Chantal
Karlsruhe Institute of Technology -KIT-  
Kraft, Christian
Karlsruhe Institute of Technology -KIT-  
Monsur, Islam
Karlsruhe Institute of Technology -KIT-  
Schwaiger, Ruth
Forschungszentrum Jülich  
Gumbsch, Peter  
Karslruher Institut für Technologie -KIT-, Institute for Applied Materials (IAM)
Eggeler, Yolita M.
Karlsruhe Institute of Technology -KIT-  
Journal
Advanced Functional Materials  
Project(s)
3D Designer Materialien  
Funder
Deutsche Forschungsgemeinschaft  
Open Access
DOI
10.1002/adfm.202302358
Additional link
Full text
Language
English
Fraunhofer-Institut für Werkstoffmechanik IWM  
Keyword(s)
  • 3D printing

  • in situ electron microscopy

  • metamaterials

  • pyrolysis

  • two-photon lithography

  • Cookie settings
  • Imprint
  • Privacy policy
  • Api
  • Contact
© 2024