The use of a laser-assisted process for direct writing of copper films and coatings has significant potential for several applications within the electronics industry. Experiments were conducted using a pulsed Nd:YAG (1064 nm) laser to irradiate a metallo-organic precursor film that had been predeposited onto glass and FR-4 substrates. Parameters that were investigated included irradiation wavelength, pulsing conditions, precursor thickness, and the use of inert and active shielding gas. Scanning electron microscopy, energy dispersive x-ray spectroscopy, and electrical resistivity measurements were used to characterize the processed specimens. Initial results of these experiments indicated that Nd:YAG irradiation resulted in decomposition of the precursor and deposition of copper; although, the crystalline deposits contained varying levels of oxide. It is believed that the decomposition mechanism is pyrolytic.
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ICALEO 2004: 23rd International Congress on Laser Materials Processing and Laser Microfabrication
October 4–7, 2004
San Francisco, California, USA
ISBN:
978-0-912035-77-2
PROCEEDINGS PAPER
Laser-assisted writing of copper films through Nd:YAG laser radiation Available to Purchase
R. Martukanitz;
R. Martukanitz
1
Applied Research Laboratory, Pennsylvania State University
, State College, PA 16804, USA
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R. Harster;
R. Harster
2
Department of Electrical Engineering, Princeton University
, Princeton, NJ 08544, USA
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D. Conklin;
D. Conklin
2
Department of Electrical Engineering, Princeton University
, Princeton, NJ 08544, USA
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S. Wagner
S. Wagner
2
Department of Electrical Engineering, Princeton University
, Princeton, NJ 08544, USA
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Published Online:
October 01 2004
Citation
R. Martukanitz, R. Harster, D. Conklin, S. Wagner; October 4–7, 2004. "Laser-assisted writing of copper films through Nd:YAG laser radiation." Proceedings of the ICALEO 2004: 23rd International Congress on Laser Materials Processing and Laser Microfabrication. ICALEO 2004: 23rd International Congress on Laser Materials Processing and Laser Microfabrication. San Francisco, California, USA. (pp. 1801). ASME. https://doi.org/10.2351/1.5060235
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