3.8 Article

3D Printing PDMS Elastomer in a Hydrophilic Support Bath via Freeform Reversible Embedding

期刊

ACS BIOMATERIALS SCIENCE & ENGINEERING
卷 2, 期 10, 页码 1781-1786

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsbiomaterials.6b00170

关键词

3D printing; PDMS; FRE printing; freeform fabrication; Carbopol

资金

  1. National Institutes of Health Director's New Innovator Award [DP2HL117750]
  2. Disruptive Health Technology Institute, Carnegie Mellon University [A017261-HIGHMARK-Feinberg]
  3. National Science Foundation CAREER Award [1454248]
  4. Div Of Civil, Mechanical, & Manufact Inn
  5. Directorate For Engineering [1454248] Funding Source: National Science Foundation

向作者/读者索取更多资源

Polydimethylsiloxane (PDMS) elastomer is used in a wide range of biomaterial applications including microfluidics, cell culture substrates, flexible electronics, and medical devices. However, it has proved challenging to 3D print PDMS in complex structures due to its low elastic modulus and need for support during the printing process. Here we demonstrate the 3D printing of hydrophobic PDMS prepolymer resins within a hydrophilic Carbopol gel support via freeform reversible embedding (FRE). In the FRE printing process, the Carbopol support acts as a Bingham plastic that yields and fluidizes when the syringe tip of the 3D printer moves through it, but acts as a solid for the PDMS extruded within it. This, in combination with the immiscibility of hydrophobic PDMS in the hydrophilic Carbopol, confines the PDMS prepolymer within the support for curing times up to 72 h while maintaining dimensional stability. After printing and curing, the Carbopol support gel releases the embedded PDMS prints by using phosphate buffered saline solution to reduce the Carbopol yield stress. As proof-of-concept, we used Sylgard 184 PDMS to 3D print linear and helical filaments via continuous extrusion and cylindrical and helical tubes via layer-by-layer fabrication. Importantly, we show that the 3D printed tubes were manifold and perfusable. The results demonstrate that hydrophobic polymers with low viscosity and long cure times can be 3D printed using a hydrophilic support, expanding the range of biomaterials that can be used in additive manufacturing. Further, by implementing the technology using low cost open-source hardware and software tools, the FRE printing technique can be rapidly implemented for research applications.

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