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  4. Powder Bed Fabrication of Copper: A Comprehensive Literature Review
 
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2025
Review
Title

Powder Bed Fabrication of Copper: A Comprehensive Literature Review

Abstract
Powder bed fusion of copper has been extensively investigated using both laser-based (PBF-LB/M) and electron beam-based (PBF-EB/M) additive manufacturing technologies. Each technique offers unique benefits as well as specific limitations. Near-infrared (NIR) laser-based LPBF is widely accessible; however, the high reflectivity of copper limits energy absorption, thereby resulting in a narrow processing window. Although optimized parameters can yield relative densities above 97%, issues such as keyhole porosity, incomplete melting, and anisotropy remain concerns. Green lasers, with higher absorptivity in copper, offer broader process windows and enable more consistent fabrication of high-density parts with superior electrical conductivity, often reaching or exceeding 99% relative density and 100% International Annealed Copper Standard (IACS). Mechanical properties, including tensile and yield strength, are also improved, though challenges remain in surface finish and geometrical resolution. In contrast, Electron Beam Powder Bed Fusion (EB-PBF) uses high-energy electron beams in a vacuum, eliminating oxidation and leveraging copper’s high conductivity to achieve high energy absorption at lower volumetric energy densities (~80 J/mm3). This results in consistently high relative densities (>99.5%) and excellent electrical and thermal conductivity, with additional benefits including faster scanning speeds and in situ monitoring capabilities. However, EB-PBF processes in general face their own limitations, such as surface roughness and powder smoking. This paper provides a comprehensive review of the current state of laser-based (PBF-LB/M) and electron beam-based (PBF-EB/M) powder bed fusion processes for the additive manufacturing of copper, summarizing key trends, material properties, and process innovations. Both approaches continue to evolve, with ongoing research aimed at refining these technologies to enable the reliable and efficient additive manufacturing of high-performance copper components.
Author(s)
Ho, Vi
Arizona State University
Ladani, Leila
Arizona State University
Razmi, Jafar
Arizona State University
Gruber, Samira  orcid-logo
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Murphy, Anthony Bruce
Commonwealth Scientific and Industrial Research Organisation
Chen, Cherry
Commonwealth Scientific and Industrial Research Organisation
East, Daniel
Commonwealth Scientific and Industrial Research Organisation
Lopez, Elena  
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Journal
Metals  
Project(s)
National Science Foundation National Research Traineeship Program  
Funder
National Science Foundation -NSF-  
Open Access
File(s)
Download (2.2 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.3390/met15101114
10.24406/publica-6118
Additional link
Full text
Language
English
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Keyword(s)
  • Powder Bed Fusion

  • Copper

  • Laser-Based

  • additive manufacturing

  • powder bed fusion (PBF)

  • laser powder bed fusion (LPBF; PBF-LB/M)

  • electron beam powder bed fusion (EB-PBF; PBF-EB/M)

  • copper

  • green laser

  • infrared laser

  • electron beam

  • process optimization

  • volumetric energy density (VED)

  • relative density

  • electrical conductivity

  • thermal conductivity

  • surface roughness

  • mechanical properties

  • melt pool modeling

  • lack of fusion (LOF)

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