A bio-inspired approach to engineering water-responsive, mechanically-adaptive materials

dc.contributor.authorJang, Daseul
dc.contributor.authorWong, Yu-Tai
dc.contributor.authorKorley, LaShanda T. J.
dc.date.accessioned2025-04-04T19:35:29Z
dc.date.available2025-04-04T19:35:29Z
dc.date.issued2025-02-20
dc.descriptionThis article was originally published in Molecular Systems Design & Engineering. The version of record is available at: https://doi.org/10.1039/D4ME00177J. © The Royal Society of Chemistry and IChemE 2025. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence (http://creativecommons.org/licenses/by-nc/3.0/).
dc.description.abstractInspired by a diverse array of hierarchical structures and mechanical function in spider silk, we leverage building blocks that can form non-covalent interactions to develop mechanically-tunable and water-responsive composite materials via hydrogen bonding modulation. Specifically, self-assembling peptide blocks consisting of poly(β-benzyl-l-aspartate) (PBLA) are introduced into a hydrophilic polyurea system. Using these peptide–polyurea hybrids (PPUs) as a hierarchical matrix, cellulose nanocrystals (CNCs) are incorporated to diversify the self-assembled nanostructures of PPUs through matrix–filler interactions. Our findings reveal that higher PBLA content in the PPUs reduces the magnitude of the stiffness differential due to the physical crosslinking induced by the peptide blocks. Additionally, the inclusion of CNCs in the PPU matrix increases the storage modulus in the dry state but also diminishes the wet-state modulus due to the shift of physical associations from peptidic arrangements to PBLA–CNC interactions, resulting in variations in the morphology of the PPU/CNC nanocomposites. This molecular design strategy allows for the development of adaptable materials with a broad range of water-responsive storage modulus switching , spanning from ∼70 MPa to ∼400 MPa. This investigation highlights the potential of harnessing peptide assembly and peptide–cellulose interactions to achieve mechanical enhancement and water-responsiveness, providing insights for engineering next-generation responsive materials.
dc.description.sponsorshipFinancial support for this research was provided by the National Science Foundation (NSF) PIRE: Bio-inspired Materials and Systems [OISE 1844463]. DMA studies were supported as part of the Center for Plastics Innovation, an Energy Frontier Research Center funded by the U.S. Department of Energy, Office of Science, Basic Energy Sciences, under award DE-SC0021166, for the use of RSA-G2 instrument. AFM access was supported by the Delaware INBRE program, with grants from the NIH-NIGMS (#P20 GM103446) and the State of Delaware, and it was provided by the BioImaging Center at the University of Delaware. Access to the ATR-FTIR, DSC, and SAXS was provided by the Advanced Materials Characterization Laboratory (AMCL) at the University of Delaware. We thank https://www.BioRender.com for providing tools that facilitated the creation of several figures included in this manuscript.
dc.identifier.citationJang, Daseul, Yu-Tai Wong, and LaShanda T. J. Korley. “A Bio-Inspired Approach to Engineering Water-Responsive, Mechanically-Adaptive Materials.” Mol. Syst. Des. Eng. 10, no. 4 (2025): 264–78. https://doi.org/10.1039/D4ME00177J.
dc.identifier.issn2058-9689
dc.identifier.urihttps://udspace.udel.edu/handle/19716/36001
dc.language.isoen_US
dc.publisherMolecular Systems Design & Engineering
dc.rightsAttribution-NonCommercial 3.0 Unporteden
dc.rights.urihttp://creativecommons.org/licenses/by-nc/3.0/
dc.titleA bio-inspired approach to engineering water-responsive, mechanically-adaptive materials
dc.typeArticle

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