dc.contributor
Universitat Politècnica de Catalunya. Departament d'Enginyeria Química
dc.contributor
Universitat Politècnica de Catalunya. IMEM-BRT- Innovation in Materials and Molecular Engineering - Biomaterials for Regenerative Therapies
dc.contributor.author
Sans Milà, Jordi
dc.contributor.author
Azevedo Gonçalves, Ingrid
dc.contributor.author
Quintana, Robert
dc.date.issued
2023-11-15
dc.identifier
Sans, J.; Azevedo, I.; Quintana, R. Ultrathin film hydrogels with controlled swelling and viscoelastic properties deposited by nanosecond pulsed plasma induced-polymerization. "Advanced materials interfaces", 15 Novembre 2023, núm. article 2300644.
dc.identifier
https://hdl.handle.net/2117/397619
dc.identifier
10.1002/admi.202300644
dc.description.abstract
Development of ultrathin film (utf) hydrogels for cutting-edge biomedical applications (i.e. artificial skins) is receiving increasing attention. Nonetheless, achieving accurate control on the structure and thickness of utf-hydrogels becomes extremely complex when assessed through conventional techniques. In this work, an atmospheric-pressure plasma-assisted deposition technique is reported, showing great thickness accuracy and versatility, to design utf-hydrogels with customized properties. For the first time, specific and independent control on the generation and nature of cross-links by only changing the plasma exposure frequency (fPE) during the synthesis process are reported. Thus, utf-hydrogels are successfully prepared with tuned swelling ratios and viscoelastic properties (ranging from 150 to 20 kPa). Moreover, a thickness accuracy of 9 nm is reported, permitting the accurate synthesis of utf-hydrogels below 150 nm. Exhaustive structural and topographical analyses allow elucidating the effects of the fPE on the cross-link generation mechanism, discarding any undesired effect on the thickness accuracy. To support the structural results obtained, quartz-crystal microbalance with dissipation (QCM-D) coupled with spectroscopic ellipsometry are put in the spotlight as an efficient and viable alternative for the characterization of the resulting properties of ultrathin film soft materials, including the presence of a hydrated layer at the interface.
dc.description.abstract
This work was supported by the Luxembourg National Research Fund (FNR) (C19/MS/13641732). J.S. was funded by the Margarita Salas Fellowship (Ministerio de Universidades de España and the European Union, NextGenerationEU).
dc.description.abstract
Peer Reviewed
dc.description.abstract
Postprint (published version)
dc.format
application/pdf
dc.publisher
John Wiley & sons
dc.relation
https://onlinelibrary.wiley.com/doi/10.1002/admi.202300644
dc.rights
http://creativecommons.org/licenses/by/4.0/
dc.rights
Attribution 4.0 International
dc.subject
Àrees temàtiques de la UPC::Enginyeria biomèdica::Biomaterials
dc.subject
Biomedical materials
dc.subject
Hydration layers
dc.subject
Hydrogel coating
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Plasma-induced polymerization
dc.subject
Spectroscopic ellipsometry
dc.subject
Materials biomèdics
dc.title
Ultrathin film hydrogels with controlled swelling and viscoelastic properties deposited by nanosecond pulsed plasma induced-polymerization