4.8 Article

3D printing of inherently nanoporous polymers via polymerization-induced phase separation

期刊

NATURE COMMUNICATIONS
卷 12, 期 1, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41467-020-20498-1

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资金

  1. ERC Starting Grant [337077-DropCellArray]
  2. Helmholtz Association's Initiative and Networking Fund [VH-NG-621]
  3. Helmholtz program Material Systems Engineering (MSE)
  4. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy [2082/1-390761711]
  5. Carl Zeiss Foundation
  6. Karlsruhe School of Optics & Photonics (KSOP)
  7. German Research Foundation (DFG) within the Gottfried-Wilhelm Leibniz prize [NE822/31]
  8. research program Virtual Materials Design (VirtMat) - Helmholtz association

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The method introduced by the authors combines the advantages of 3D printing and polymerization-induced phase separation, enabling the formation of 3D polymer structures with controllable inherent porosity.
3D printing offers enormous flexibility in fabrication of polymer objects with complex geometries. However, it is not suitable for fabricating large polymer structures with geometrical features at the sub-micrometer scale. Porous structure at the sub-micrometer scale can render macroscopic objects with unique properties, including similarities with biological interfaces, permeability and extremely large surface area, imperative inter alia for adsorption, separation, sensing or biomedical applications. Here, we introduce a method combining advantages of 3D printing via digital light processing and polymerization-induced phase separation, which enables formation of 3D polymer structures of digitally defined macroscopic geometry with controllable inherent porosity at the sub-micrometer scale. We demonstrate the possibility to create 3D polymer structures of highly complex geometries and spatially controlled pore sizes from 10nm to 1000 mu m. Produced hierarchical polymers combining nanoporosity with micrometer-sized pores demonstrate improved adsorption performance due to better pore accessibility and favored cell adhesion and growth for 3D cell culture due to surface porosity. This method extends the scope of applications of 3D printing to hierarchical inherently porous 3D objects combining structural features ranging from 10nm up to cm, making them available for a wide variety of applications. 3D printing offers flexibility in fabrication of polymer objects but fabrication of large polymer structures with micrometer-sized geometrical features are challenging. Here, the authors introduce a method combining advantages of 3D printing and polymerization-induced phase separation, which enables formation of 3D polymer structures with controllable inherent porosity.

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