3D Printing Functionally Graded Porous Materials for Simultaneous Fabrication of Dense and Porous Structures in Membrane‐Integrated Fluidic Devices

Author:

Balakrishnan Hari Kalathil12ORCID,Dumée Ludovic F.345ORCID,Merenda Andrea26ORCID,Aubry Cyril7ORCID,Yuan Dan1ORCID,Doeven Egan H.18,Guijt Rosanne M.1ORCID

Affiliation:

1. Centre for Rural and Regional Futures Deakin University Locked Bag 20000 Geelong VIC 3320 Australia

2. Institute for Frontier Materials Deakin University Locked Bag 20000 Geelong VIC 3320 Australia

3. Department of Chemical Engineering Khalifa University Abu Dhabi United Arab Emirates

4. Research and Innovation Centre on CO2 and Hydrogen Khalifa University Abu Dhabi United Arab Emirates

5. Centre for Membrane and Advanced Water Technology Khalifa University Abu Dhabi United Arab Emirates

6. School of Science RMIT University 124 La Trobe Street Melbourne VIC Australia

7. Research Laboratories Khalifa University Abu Dhabi United Arab Emirates

8. School of Life and Environmental Sciences Deakin University Locked Bag 20000 Geelong VIC 3320 Australia

Abstract

3D printing provides access to complex multilevel architectures, though the capability to routinely print and integrate structures of controlled porosity is limited. Herein, grayscale digital light projection 3D printing of a polymerization‐induced phase separation ink is introduced to directly 3D print functionally graded porous within a single layer from the same ink formulation. The structural properties of materials printed from a single ink are tuned from an effectively dense to a porous material with interconnected pores up to 250 nm. Heterostructures with the physically dense structure of porosity 0.8% and porous structures with up to 23% can be concurrently formed within a layer, with high spatial resolution inherent of this 3D printing technique. Materials with densities from 1.01 to 1.21 g cm−3 are 3D printed in a wicking device and show wicking rates (H2O) from complete diffusion blockage up to 4.5 mm h−1. Furthermore, a proof‐of‐concept membrane‐integrated fluidic device is used for the elemental metal sensing of iron in soil. The presented single‐step fabrication of functionally graded materials with pixel‐based control within a single layer holds potential for manufacturing and integrating membranes or sorbents for environmental, biotechnology, and healthcare applications.

Publisher

Wiley

Subject

General Earth and Planetary Sciences,General Environmental Science

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