High absorptivity nanotextured powders for additive manufacturing

Author:

Tertuliano Ottman A.12ORCID,DePond Philip J.23ORCID,Lee Andrew C.4,Hong Jiho4ORCID,Doan David2ORCID,Capaldi Luc1ORCID,Brongersma Mark4ORCID,Gu X. Wendy2ORCID,Matthews Manyalibo J.3ORCID,Cai Wei2ORCID,Lew Adrian J.2ORCID

Affiliation:

1. Mechanical Engineering and Applied Mechanics, University of Pennsylvania, 220 S. 33rd St., Philadelphia, PA 19104, USA.

2. Mechanical Engineering, Stanford University, 452 Escondido Mall, Stanford, CA 94305, USA.

3. Materials Science Division, Lawrence Livermore National Laboratory, 7000 East Ave, Livermore, CA 94550, USA.

4. Materials Science and Engineering, Stanford University, 496 Lomita Mall Suite 102, Stanford, CA 94305, USA.

Abstract

The widespread application of metal additive manufacturing (AM) is limited by the ability to control the complex interactions between the energy source and the feedstock material. Here, we develop a generalizable process to introduce nanoscale grooves to the surface of metal powders which increases the powder absorptivity by up to 70% during laser powder bed fusion. Absorptivity enhancements in copper, copper-silver, and tungsten enable energy-efficient manufacturing, with printing of pure copper at relative densities up to 92% using laser energy densities as low as 83 joules per cubic millimeter. Simulations show that the enhanced powder absorptivity results from plasmon-enabled light concentration in nanoscale grooves combined with multiple scattering events. The approach taken here demonstrates a general method to enhance the absorptivity and printability of reflective and refractory metal powders by changing the surface morphology of the feedstock without altering its composition.

Publisher

American Association for the Advancement of Science (AAAS)

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