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3D printed microfluidic devices: enablers and barriers

Lab on a Chip · 2016 · Vol. 16(11) · pp. 1993–2013
Sidra WaheedJoan M. CabotNiall P. MacdonaldTrevor LewisRosanne M. GuijtBrett PaullMichael C. Breadmore

Abstract

3D printing has the potential to significantly change the field of microfluidics. The ability to fabricate a complete microfluidic device in a single step from a computer model has obvious attractions, but it is the ability to create truly three dimensional structures that will provide new microfluidic capability that is challenging, if not impossible to make with existing approaches. This critical review covers the current state of 3D printing for microfluidics, focusing on the four most frequently used printing approaches: inkjet (i3DP), stereolithography (SLA), two photon polymerisation (2PP) and extrusion printing (focusing on fused deposition modeling). It discusses current achievements and limitations, and opportunities for advancement to reach 3D printing's full potential.

Nanofabrication and Lithography TechniquesAdditive Manufacturing and 3D Printing Technologies3D Printing in Biomedical ResearchMicrofluidics3d printedNanotechnologyMaterials scienceEngineeringManufacturing engineering

Funding

  • Centre of Excellence for Electromaterials Science, Australian Research Council
  • Australian Research Council
Citations
1,013
FWCI
62.62
field-weighted impact
References
123
Percentile
100%
vs. same field & year
Citations per year
Cited by
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References
Polymer microfluidic devices
Talanta · 2002 · 1,169 citations
Short fiber reinforced composites for fused deposition modeling
Materials Science and Engineering A · 2001 · 687 citations
A review on 3D micro-additive manufacturing technologies
The International Journal of Advanced Manufacturing Technology · 2012 · 1,261 citations
Inkjet Printing—Process and Its Applications
Advanced Materials · 2009 · 2,305 citations
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3D printed microfluidic devices: enablers and barriers · Scinovex