4.8 Article

Surface Force Measurements of Mussel-Inspired Pressure-Sensitive Adhesives

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 14, 期 4, 页码 6212-6220

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c22295

关键词

biomimetic; adhesion; cohesion; pressure-sensitive adhesive; catechol; surface forces apparatus

资金

  1. National Science Foundation Graduate Research Fellowship Program [1650114]
  2. BASF California Research Alliance (CARA)
  3. MRSEC program of the NSF [DMR 1720256]

向作者/读者索取更多资源

Translating fundamental studies of marine mussel adhesion into practical mussel-inspired wet adhesives remains a challenging task. In this study, we investigated the adhesion of mussel-inspired pressure-sensitive adhesives and found that the influence of catechol content depends on the choice of solvent and that adhesive performance is dictated by film composition rather than molecular architecture. Our results also emphasize the importance of electrostatic and hydrophobic interactions for adhesion and cohesion in aqueous environments.
Translating fundamental studies of marine mussel adhesion into practical mussel-inspired wet adhesives remains an important technological challenge. To adhere, mussels secrete adhesive proteins rich in the catecholic amino acid 3,4-dihydroxyphenylalanine (Dopa) and positively charged lysine. Consequently, numerous synthetic adhesives incorporating catecholic and cationic functionalities have been designed. However, despite widespread research, uncertainties remain about the optimal design of synthetic mussel-inspired adhesives. Here, we present a study of the adhesion of mussel-inspired pressure-sensitive adhesives. We explore the effects of catechol content, molecular architecture, and solvent quality on pressure-sensitive adhesive (PSA) adhesion and cohesion measured in a surface forces apparatus. Our findings demonstrate that the influence of catechol content depends on the choice of solvent and that adhesive performance is dictated by film composition rather than molecular architecture. Our results also highlight the importance of electrostatic and hydrophobic interactions for adhesion and cohesion in aqueous environments. Together, our findings contribute to an improved understanding of the interplay between materials chemistry, environmental conditions, and adhesive performance to facilitate the design of bioinspired wet adhesives.

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