Ion Valency as a Molecular Switch for Salt-Resistant Underwater Adhesion.

Wang, Chang-Sheng; Zhang, Jiaxing; Zhang, Hu; Raj, Wojciech; Hassanpour, Nahid; Pham, Duy Anh; Guo, Hui; Liu, Xingxun et al. · Adv Mater · 2025

basic_science · Level V

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Abstract

Achieving underwater adhesion remains challenging due to the disruption of interfacial interactions by hydration layers and the ionic environment. This study shows how high adhesion in a saline environment can be achieved in adhesive peptide systems relying on π-π and cation-π interactions using multivalent ions. Monovalent ions (K<sup>+</sup>) disrupt native peptide-peptide interactions, drastically reducing adhesion strength. Conversely, multivalent ions (Mg<sup>2+</sup> and Y<sup>3+</sup>) enable robust interfacial adhesion by forming stable π-cation-π networks, effectively compensating for disrupted native pairings. The adhesion enhancement by Y<sup>3+</sup> is particularly pronounced, highlighting its unique capability for multidentate bridging. Molecular dynamics simulations and quantum mechanical analyses confirm that Y<sup>3+</sup> ions stabilize extended interfacial interactions, enabling stronger stress dissipation during tensile deformation. Additionally, NMR spectroscopy supports these observations by demonstrating significant cation-dependent perturbations of aromatic (Phe) and cationic (Lys) peptide residues. A thermodynamic model further elucidates the competitive binding dynamics underpinning adhesion modulation and capturing all experimental trends. This work provides detailed molecular insights into ion valency effects on cation-π mediated underwater adhesion, guiding the development of bio-inspired materials with tailored ionic responsiveness suitable for biomedical and technological applications in saline environments.

Medical subject headings