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  4. High-resolution patterning of organic-inorganic photoresins for tungsten and tungsten carbide microstructures
 
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2023
Journal Article
Title

High-resolution patterning of organic-inorganic photoresins for tungsten and tungsten carbide microstructures

Abstract
Tungsten is an important material for high-temperature applications due to its high chemical and thermal stability. Its carbide, that is, tungsten carbide, is used in tool manufacturing because of its outstanding hardness and as a catalyst scaffold due to its morphology and large surface area. However, microstructuring, especially high-resolution 3D microstructuring of both materials, is a complex and challenging process which suffers from slow speeds and requires expensive specialized equipment. Traditional subtractive machining methods, for example, milling, are often not feasible because of the hardness and brittleness of the materials. Commonly, tungsten and tungsten carbide are manufactured by powder metallurgy. However, these methods are very limited in the complexity and resolution of the produced components. Herein, tungsten ion-containing organic–inorganic photoresins, which are patterned by two-photon lithography (TPL) at micrometer resolution, are introduced. The printed structures are converted to tungsten or tungsten carbide by thermal debinding and reduction of the precursor or carbothermal reduction reaction, respectively. Using TPL, complex 3D tungsten and tungsten carbide structures are prepared with a resolution down to 2 and 7 μm, respectively. This new pathway of structuring tungsten and its carbide facilitates a broad range of applications from micromachining to metamaterials and catalysis.
Author(s)
Luitz, Manuel
University of Freiburg, Department of Microsystems Engineering - IMTEK
Pellegrini, Diana
University of Freiburg, Department of Microsystems Engineering - IMTEK
Holst, Miriam von
University of Freiburg, Department of Microsystems Engineering - IMTEK
Seteiz, Khaled
University of Freiburg, Department of Microsystems Engineering - IMTEK
Gröner, Lukas  
Fraunhofer-Institut für Werkstoffmechanik IWM  
Schleyer, Mario
Fraunhofer-Institut für Werkstoffmechanik IWM  
Daub, Michael
University of Freiburg
Warmbold, Andreas
University of Freiburg
Thomann, Yi
University of Freiburg
Thomann, Ralf
University of Freiburg
Kotz-Helmer, Frederik
University of Freiburg, Department of Microsystems Engineering - IMTEK
Rapp, Bastian E.
University of Freiburg, Department of Microsystems Engineering - IMTEK
Journal
Advanced engineering materials  
Project(s)
The Capillary Lock Actuator: A novel bistable microfluidic actuator for cost-effective high-density actuator arrays suitable for large-scale graphical tactile displays
Lebende, adaptive und energieautonome Materialsysteme (livMatS)  
Cluster "Interactive and Programmable Materials"
Funder
European Commission  
Deutsche Forschungsgemeinschaft -DFG-, Bonn  
Carl Zeiss Foundation
Open Access
DOI
10.1002/adem.202201927
Additional full text version
Landing Page
Language
English
Fraunhofer-Institut für Werkstoffmechanik IWM  
Keyword(s)
  • carbothermal reduction

  • metal printing

  • microstructuring

  • tungsten

  • tungsten carbide

  • two-photon polymerization

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