MIT Libraries logoDSpace@MIT

MIT
View Item 
  • DSpace@MIT Home
  • MIT Open Access Articles
  • MIT Open Access Articles
  • View Item
  • DSpace@MIT Home
  • MIT Open Access Articles
  • MIT Open Access Articles
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.

Toughening and Imparting Deconstructability to 3D‐Printed Glassy Thermosets with “Transferinker” Additives

Author(s)
Qin, K Peter; Herzog‐Arbeitman, Abraham; Zou, Weizhong; Chakraborty, Saswata; Kristufek, Samantha L; Husted, Keith EL; Joly, Guy D; Craig, Stephen L; Olsen, Bradley D; Johnson, Jeremiah A; ... Show more Show less
Thumbnail
DownloadPublished version (3.659Mb)
Publisher with Creative Commons License

Publisher with Creative Commons License

Creative Commons Attribution

Additional downloads
Addition (76.64Kb)
Publisher with Creative Commons License

Publisher with Creative Commons License

Creative Commons Attribution

Terms of use
Creative Commons Attribution https://creativecommons.org/licenses/by/4.0/
Metadata
Show full item record
Abstract
Thermoset toughness and deconstructability are often opposing features; simultaneously improving both without sacrificing other mechanical properties (e.g., stiffness and tensile strength) is difficult, but, if achieved, could enhance the usage lifetime and end‐of‐life options for these materials. Here, a strategy that addresses this challenge in the context of photopolymer resins commonly used for 3D printing of glassy, acrylic thermosets is introduced. It is shown that incorporating bis‐acrylate “transferinkers,” which are cross‐linkers capable of undergoing degenerative chain transfer and new strand growth, as additives (5–25 mol%) into homemade or commercially available photopolymer resins leads to photopolymer thermosets with substantially improved tensile toughness and triggered chemical deconstructability with minimal impacts on Young's moduli, tensile strengths, and glass transition temperatures. These properties result from a transferinker‐driven topological transition in network structure from the densely cross‐linked long, heterogeneous primary strands of traditional photopolymer networks to more uniform, star‐like networks with few dangling ends; the latter structure more effectively bear stress yet is also more easily depercolated via solvolysis. Thus, transferinkers represent a simple and effective strategy for improving the mechanical properties of photopolymer thermosets and providing a mechanism for their triggered deconstructability.
Date issued
2024-09-11
URI
https://hdl.handle.net/1721.1/163646
Department
Massachusetts Institute of Technology. Department of Chemistry; Massachusetts Institute of Technology. Department of Chemical Engineering
Journal
Advanced Materials
Publisher
Wiley
Citation
Qin, K.P., Herzog-Arbeitman, A., Zou, W., Chakraborty, S., Kristufek, S.L., Husted, K.E.L., Joly, G.D., Craig, S.L., Olsen, B.D. and Johnson, J.A. (2025), Addition to: “Toughening and Imparting Deconstructability to 3D-Printed Glassy Thermosets with “Transferinker” Additives”. Adv. Mater., 37: 2511990.
Version: Final published version

Collections
  • MIT Open Access Articles

Browse

All of DSpaceCommunities & CollectionsBy Issue DateAuthorsTitlesSubjectsThis CollectionBy Issue DateAuthorsTitlesSubjects

My Account

Login

Statistics

OA StatisticsStatistics by CountryStatistics by Department
MIT Libraries
PrivacyPermissionsAccessibilityContact us
MIT
Content created by the MIT Libraries, CC BY-NC unless otherwise noted. Notify us about copyright concerns.