Up to 30 mol % of acrylic acid (AAc) was incorporated into a pH-responsive smart adhesive consisting of dopamine methacrylamide and 3-acrylamido phenylboronic acid. Fourier transform infrared spectroscopy and rheometry confirmed that the incorporation of AAc shifted the pH of catechol–boronate complexation to a more basic pH. Correspondingly, adhesive formulations with elevated AAc contents demonstrated strong adhesion to quartz substrate at a neutral to mildly basic pH (7.5–8.5) based on Johnson–Kendall–Roberts contact mechanics test. When pH was further increased to 9.0, there was a drastic reduction in the measured work of adhesion (18- and 7-fold reduction compared to values measured at pHs 7.5 and 8.5, respectively) due to the formatio...
Maintaining the underwater adhesive performance over a broad range of solution pH is challenging but...
Dopamine mimics the exceptional moisture-resistant adhesive properties of the amino acid, DOPA, foun...
Nature often serves as a model system for developing new adhesives. In aqueous environments, mussel-...
A smart adhesive capable of binding to a wetted surface was prepared by copolymerizing dopamine meth...
A smart adhesive capable of binding to a wetted surface was prepared by copolymerizing dopamine meth...
Adhesive hydrogels were prepared by copolymerizing dopamine methacrylamide with either acrylic acid ...
The feasibility of salicylhydroxamic acid (SHAM) to function as a pH-responsive, switchable adhesive...
The remarkable underwater adhesion strategy employed by mussels has inspired bioadhesives that have ...
The need for improved wet adhesives has driven research on mussel-inspired materials incorporating d...
To reduce the need for elevated electrical potential to deactivate catechol-based smart adhesive and...
To reduce the need for elevated electrical potential to deactivate catechol-based smart adhesive and...
Smart adhesive hydrogels containing 10 mol% each of dopamine methacrylamide (DMA) and 3-acrylamido p...
Catechol, a major mussel-inspired underwater adhesive moiety, has been used to develop functional ad...
The interaction between poly(acrylamide) gels carrying phenylboronic acid (PB gel) and catechol moi...
In this article, catechol-functionalized polymers are synthesized by free radical polymerization of ...
Maintaining the underwater adhesive performance over a broad range of solution pH is challenging but...
Dopamine mimics the exceptional moisture-resistant adhesive properties of the amino acid, DOPA, foun...
Nature often serves as a model system for developing new adhesives. In aqueous environments, mussel-...
A smart adhesive capable of binding to a wetted surface was prepared by copolymerizing dopamine meth...
A smart adhesive capable of binding to a wetted surface was prepared by copolymerizing dopamine meth...
Adhesive hydrogels were prepared by copolymerizing dopamine methacrylamide with either acrylic acid ...
The feasibility of salicylhydroxamic acid (SHAM) to function as a pH-responsive, switchable adhesive...
The remarkable underwater adhesion strategy employed by mussels has inspired bioadhesives that have ...
The need for improved wet adhesives has driven research on mussel-inspired materials incorporating d...
To reduce the need for elevated electrical potential to deactivate catechol-based smart adhesive and...
To reduce the need for elevated electrical potential to deactivate catechol-based smart adhesive and...
Smart adhesive hydrogels containing 10 mol% each of dopamine methacrylamide (DMA) and 3-acrylamido p...
Catechol, a major mussel-inspired underwater adhesive moiety, has been used to develop functional ad...
The interaction between poly(acrylamide) gels carrying phenylboronic acid (PB gel) and catechol moi...
In this article, catechol-functionalized polymers are synthesized by free radical polymerization of ...
Maintaining the underwater adhesive performance over a broad range of solution pH is challenging but...
Dopamine mimics the exceptional moisture-resistant adhesive properties of the amino acid, DOPA, foun...
Nature often serves as a model system for developing new adhesives. In aqueous environments, mussel-...