Chris William Anderson Bainbridge
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View article: Patterning of RAFT Polymer Networks by Laser Deactivation
Patterning of RAFT Polymer Networks by Laser Deactivation Open
Reversible addition‐fragmentation chain‐transfer (RAFT) polymer networks grow in interest due to their living and tunable characteristics. An essential step toward exploiting these characteristics is the production of precise patterns for …
View article: Mechanical modification of RAFT-based living polymer networks by photo-growth with crosslinker
Mechanical modification of RAFT-based living polymer networks by photo-growth with crosslinker Open
In this work we present a study into the usage of crosslinker growth of Reversible addition-fragmentation chain-transfer polymerization (RAFT)-based Living Polymer Networks (LPNs) for the purpose of mechanical strengthening. Previous work …
View article: 3D Printing and Growth Induced Bending based on PET-RAFT Polymerization
3D Printing and Growth Induced Bending based on PET-RAFT Polymerization Open
4D printing has steadily become an emerging area of advanced manufacturing research and has produced some truly fantastic innovations. Previously we have demonstrated the 3D printing process based on PET-RAFT polymerization, and its subseq…
View article: PET-RAFT Facilitated 3D Printing of Polymeric Materials
PET-RAFT Facilitated 3D Printing of Polymeric Materials Open
Photopolymerization-based 3D printing process is typically conducted using nonliving free radical polymerization, which leads to fabrication of immutable materials. An alternative 3D printing of polymeric materials using trithiocarbonate (…
View article: PET-RAFT Facilitated 3D Printing of Polymeric Materials
PET-RAFT Facilitated 3D Printing of Polymeric Materials Open
Photopolymerization-based 3D printing process is typically conducted using nonliving free radical polymerization, which leads to fabrication of immutable materials. An alternative 3D printing of polymeric materials using trithiocarbonate (…