DOE OSTI · 1755836
Current challenges and potential directions towards precision microscale additive manufacturing – Part III: Energy induced deposition and hybrid electrochemical processes
Abstract
The Part III of the four-part series of articles discusses the challenges and opportunities in microscale additive manufacturing processes, specifically focusing on energy-induced deposition and electrochemical processes. Compared to the direct ink write (DIW) and laser-based processes, the energy-induced deposition methods can fabricate high-resolution, high aspect ratio and complex parts, while the hybrid electrochemical process can be used to fabricate complex parts using a wide range of conductive and photoactive materials. However, the volumetric throughput of these processes is lower than their DIW and laser-based counterparts. The processes that have been explored in this process are Focused-ion Beam Induced Deposition (FIBID), Laser Chemical Vapor Deposition (LCVD), Menicus-confined Electrodeposition (MCED) and Laser-Enabled Electrochemical Printing (LECP). The range of processable materials, feature-size resolution, geometry and volumetric throughput are used as factors to evaluate the current state-of-the-art for these processes. Finally, novel approaches have been proposed in the article to address these challenges associated with microscale AM processes.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Chizari, Samira, Shaw, Lucas A., Behera, Dipankar, Roy, Nilabh K., Zheng, Ximeng, Panas, Robert M., Hopkins, Jonathan B., Chen, Shih-Chi, Cullinan, Michael A.. 2020-12-15. Current challenges and potential directions towards precision microscale additive manufacturing – Part III: Energy induced deposition and hybrid electrochemical processes. https://doi.org/10.1016/j.precisioneng.2020.12.013
Cite the original work for its findings. Save a collection to share your selection of sources.