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Customized nanostructured ceramics via microphase separation 3D printing

  • Valentin A. Bobrin
  • , Haira G. Hackbarth
  • , Yin Yao
  • , Nicholas M. Bedford
  • , Jin Zhang
  • , Nathaniel Corrigan
  • , Cyrille Boyer
  • University of New South Wales

Research output: Contribution to journalArticlepeer-review

26 Citations (Scopus)
5 Downloads (Pure)

Abstract

To date, the restricted capability to fabricate ceramics with independently tailored nano- and macroscopic features has hindered their implementation in a wide range of crucial technological areas, including aeronautics, defense, and microelectronics. In this study, a novel approach that combines self- and digital assembly to create polymer-derived ceramics with highly controlled structures spanning from the nano- to macroscale is introduced. Polymerization-induced microphase separation of a resin during digital light processing generates materials with nanoscale morphologies, with the distinct phases consisting of either a preceramic precursor or a sacrificial polymer. By precisely controlling the molecular weight of the sacrificial polymer, the domain size of the resulting material phases can be finely tuned. Pyrolysis of the printed objects yields ceramics with complex macroscale geometries and nanoscale porosity, which display excellent thermal and oxidation resistance, and morphology-dependent thermal conduction properties. This method offers a valuable technological platform for the simplified fabrication of nanostructured ceramics with complex shapes.

Original languageEnglish
Article number2304734
Number of pages12
JournalAdvanced Science
Volume10
Issue number32
DOIs
Publication statusPublished - Nov 2023
Externally publishedYes

Keywords

  • 3D printing
  • nanostructured ceramics
  • photoreversible addition-fragmentation chain transfer (RAFT)
  • polymerization induced microphase separation
  • self-assembly of block copolymers

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