Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/49710
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dc.contributor.authorHELSEN, Arthur-
dc.contributor.authorRibeiro, Joao S.-
dc.contributor.authorBeeren, Ivo A.-
dc.contributor.authorDuimel, Hans-
dc.contributor.authorCardinaels, Ruth-
dc.contributor.authorMoroni, Lorenzo-
dc.contributor.authorPITET, Louis-
dc.contributor.authorBaker, Matthew B.-
dc.date.accessioned2026-07-30T11:15:26Z-
dc.date.available2026-07-30T11:15:26Z-
dc.date.issued2026-
dc.date.submitted2026-07-30T11:02:24Z-
dc.identifier.citationMacromolecules, 59 (14) , p. 8375 -8387-
dc.identifier.urihttp://hdl.handle.net/1942/49710-
dc.description.abstractThe fibrous, viscoelastic extracellular matrix (ECM) directs cell fate through mechanotransduction, but recreating these time-dependent mechanics in biomaterials remains a significant challenge. Current synthetic matrices rarely reconcile fibrillar architecture, physiological stiffness, and stress relaxation, with most systems achieving only some of these hallmarks. Supramolecular benzene-1,3,5-tricarboxamide (BTA) hydrogels offer a compelling route forward, as their hydrogen-bonded nanofibers mimic ECM-like networks. Simultaneously, the reversible dynamic hydrogen bonding responsible for the assemblies enables shear thinning, self-healing, and tunable viscoelasticity. Here, three distinct BTA hydrogels were developed, distinguishable by the hydrophilic poly(ethylene) glycol (PEG) linker length, and all hydrogelators self-assemble and form self-healing, shear thinning hydrogels. Curiously, in contrast to covalent networks, shortening the length of PEG leads to a decrease in stiffness (G ') and faster stress relaxation time scales (t 1/2). Blending BTA hydrogelators with two different molar masses leads to an almost linear increase in G ' yet a more modest increase in t 1/2. The hydrogels were 3D printed with good shape fidelity, and all three hydrogels are adherent, leading to a self-sustaining construct composed of three regions with distinct G ' and t 1/2. These findings emphasize the power of using polymer length as an orthogonal design handle, further expanding our chemical toolbox for developing processable biomaterials with tunable viscoelasticity.-
dc.description.sponsorshipACKNOWLEDGMENTS A.H., L.M., L.M.P., and M.B.B. would like to thank the Special Research Fund of Hasselt University − Maastricht University cooperation (BOF22DOCUM09). This work has been funded by the European Union. This work is supported by the European Research Council Consolidator Grant (“SupraValent,” Grant #101088285). This publication is part of the project FAB4FUTURE with file number P22.005 of the research programme Perspectief which is (partly) financed by the Dutch Research Council (NWO). The authors are grateful for the technical support provided by Meghana Mekala, Milan den Haese, Ulrike Arickx, Jonas Schimmel, Anna Pierrard, Gunter Reekmans, and Sander Smeets.-
dc.language.isoen-
dc.publisherAMER CHEMICAL SOC-
dc.rights2026 The Authors. Published by American Chemical Society. This article is licensed under CC-BY 4.0-
dc.titleLinker MolarMass-Driven Control over SupramolecularNetwork Relaxation and Architecture in BTA Hydrogels-
dc.typeJournal Contribution-
dc.identifier.epage8387-
dc.identifier.issue14-
dc.identifier.spage8375-
dc.identifier.volume59-
local.format.pages13-
local.bibliographicCitation.jcatA1-
dc.description.notesBaker, MB (corresponding author), Maastricht Univ, MERLN Inst Technol Inspired Regenerat Med, Dept Instructive Biomat Engn, NL-6200 MD Maastricht, Netherlands.; Pitet, LM (corresponding author), Hasselt Univ, Inst Mat Res IMO, Dept Chem, Adv Funct Polymers Grp, B-3500 Hasselt, Belgium.; Baker, MB (corresponding author), Maastricht Univ, MERLN Inst Technol Inspired Regenerat Med, Dept Complex Tissue Regenerat, NL-6200 MD Maastricht, Netherlands.-
dc.description.noteslouis.pitet@uhasselt.be; m.baker@maastrichtuniversity.nl-
local.publisher.place1155 16TH ST, NW, WASHINGTON, DC 20036 USA-
local.type.refereedRefereed-
local.type.specifiedArticle-
dc.identifier.doi10.1021/acs.macromol.5c03492-
dc.identifier.isi001817449300001-
local.provider.typewosris-
local.description.affiliation[Helsen, Arthur; Baker, Matthew B.] Maastricht Univ, MERLN Inst Technol Inspired Regenerat Med, Dept Instructive Biomat Engn, NL-6200 MD Maastricht, Netherlands.-
local.description.affiliation[Helsen, Arthur; Pitet, Louis M.] Hasselt Univ, Inst Mat Res IMO, Dept Chem, Adv Funct Polymers Grp, B-3500 Hasselt, Belgium.-
local.description.affiliation[Helsen, Arthur; Ribeiro, Joao S.; Beeren, Ivo A.; Moroni, Lorenzo; Baker, Matthew B.] Maastricht Univ, MERLN Inst Technol Inspired Regenerat Med, Dept Complex Tissue Regenerat, NL-6200 MD Maastricht, Netherlands.-
local.description.affiliation[Cardinaels, Ruth] Katholieke Univ Leuven, Dept Chem Engn, Soft Matter Rheol & Technol, B-3001 Leuven, Belgium.-
local.description.affiliation[Duimel, Hans] Maastricht Univ, Maastricht MultiModal Mol Imaging Inst, NL-6200 MD Maastricht, Netherlands.-
local.uhasselt.internationalyes-
item.accessRightsOpen Access-
item.contributorHELSEN, Arthur-
item.contributorRibeiro, Joao S.-
item.contributorBeeren, Ivo A.-
item.contributorDuimel, Hans-
item.contributorCardinaels, Ruth-
item.contributorMoroni, Lorenzo-
item.contributorPITET, Louis-
item.contributorBaker, Matthew B.-
item.fullcitationHELSEN, Arthur; Ribeiro, Joao S.; Beeren, Ivo A.; Duimel, Hans; Cardinaels, Ruth; Moroni, Lorenzo; PITET, Louis & Baker, Matthew B. (2026) Linker MolarMass-Driven Control over SupramolecularNetwork Relaxation and Architecture in BTA Hydrogels. In: Macromolecules, 59 (14) , p. 8375 -8387.-
item.fulltextWith Fulltext-
crisitem.journal.issn0024-9297-
crisitem.journal.eissn1520-5835-
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