Abstract
High energy photons (λ < 400 nm) are frequently used to initiate free radical polymerizations to form polymer networks, but are only effective for transparent objects. This phenomenon poses a major challenge to additive manufacturing of particle-reinforced composite networks since deep light penetration of short-wavelength photons limits the homogeneous modification of physicochemical and mechanical properties. Herein, the unconventional, yet versatile, multiexciton process of triplet–triplet annihilation upconversion (TTA-UC) is employed for curing opaque hydrogel composites created by direct-ink-write (DIW) 3D printing. TTA-UC converts low energy red light (λmax = 660 nm) for deep penetration into higher-energy blue light to initiate free radical polymerizations within opaque objects. As proof-of-principle, hydrogels containing up to 15 wt.% TiO2 filler particles and doped with TTA-UC chromophores are readily cured with red light, while composites without the chromophores and TiO2 loadings as little as 1–2 wt.% remain uncured. Importantly, this method has wide potential to modify the chemical and mechanical properties of complex DIW 3D-printed composite polymer networks.
| Original language | English |
|---|---|
| Article number | 2207673 |
| Journal | Advanced Materials |
| Volume | 35 |
| Issue number | 11 |
| Early online date | 3 Jan 2023 |
| DOIs | |
| State | Published - 16 Mar 2023 |
| Externally published | Yes |
Bibliographical note
Publisher Copyright:© 2023 Wiley-VCH GmbH.
Funding
This research was financially supported by the Center for the Chemistry of Molecularly Optimized Networks (MONET), a National Science Foundation (NSF) Center for Chemical Innovation (CHE‐2116298). This research used resources of the Advanced Photon Source, a U.S. Department of Energy (DOE) Office of Science User Facility, operated for the DOE Office of Science by Argonne National Laboratory under Contract No. DE‐AC02‐06CH11357 (E.K.H and L.D.P. acknowledge). E.K.H. and L.D.P acknowledge support from NSF Emerging Frontiers in Research and Innovation (EFRI) program (2029249). N.S. is grateful to the University of the Basque Country (UPV/EHU) and the Margarita Salas fellowship for the requalification of the Spanish University system for 2021–2023, financed by the European Union‐Next Generation EU. This research was financially supported by the Center for the Chemistry of Molecularly Optimized Networks (MONET), a National Science Foundation (NSF) Center for Chemical Innovation (CHE-2116298). This research used resources of the Advanced Photon Source, a U.S. Department of Energy (DOE) Office of Science User Facility, operated for the DOE Office of Science by Argonne National Laboratory under Contract No. DE-AC02-06CH11357 (E.K.H and L.D.P. acknowledge). E.K.H. and L.D.P acknowledge support from NSF Emerging Frontiers in Research and Innovation (EFRI) program (2029249). N.S. is grateful to the University of the Basque Country (UPV/EHU) and the Margarita Salas fellowship for the requalification of the Spanish University system for 2021–2023, financed by the European Union-Next Generation EU.
| Funders | Funder number |
|---|---|
| European Union-Next Generation EU | |
| European Union-Next Generation EU | |
| Spanish University | |
| National Science Foundation | CHE‐2116298 |
| U.S. Department of Energy | |
| Division of Emerging Frontiers in Research and Innovation | 2029249 |
| Office of Science | |
| Argonne National Laboratory | DE‐AC02‐06CH11357 |
| Edge Hill University | |
| Euskal Herriko Unibertsitatea |
Keywords
- 3D Printing
- composites
- direct-ink-write printing
- hydrogels
- photopolymerization
- triplet–triplet annihilation upconversion
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