Inspired by the strong chemical adhesion mechanism of mussels, we designed a catechol-based electrochemically triggered self-assembly of films based on ethylene glycol molecules bearing catechol groups on both sides and denoted as bis-catechol molecules. These molecules play the role of morphogens and, in contrast to previously investigated systems, they are also one of the constituents, after reaction, of the film. Unable to interact together, commercially available poly(allylamine hydrochloride) (PAH) chains and bis-catechol molecules are mixed in an aqueous solution and brought in contact with an electrode. By application of defined potential cycles, bis-catechol molecules undergo oxidation leading to molecules bearing “reactive” quinon...
International audienceThe possibility to functionalize almost all kinds of interfaces with catechola...
The discovery of 3,4-dihydroxyphenyl-L-alanine (L-DOPA), a catechol-functionalized amino acid as maj...
Mussels can affix themselves to a variety of wet surfaces under harsh marine conditions by secreting...
Inspired by the strong chemical adhesion mechanism of mussels, we designed a catechol-based electroc...
Inspired by the strong chemical adhesion mechanism of mussels, we designed a catechol-based electroc...
Molecular architectures that spontaneously grow exclusively near a surface are rare. Electrodepositi...
We introduce a newly designed catechol-based compound and its application for the preparation of hom...
Catechol reaction mechanisms form the basis of marine mussel adhesion, allowing for bond formation a...
The adhesion of marine mussels has peaked the interest of many in the scientific community because o...
We introduce a newly designed catechol-based compound and its application for the preparation of hom...
Conducting poly(o-aminophenol) films (PoAP) have been electrosynthesized onto Pt substrates by cycli...
The robust, versatile attachment of mussels in the intertidal zone has motivated a large effort to c...
Polyampholyte-based films can be efficiently self-assembled onto a surface in a one-pot manner. By u...
Finding that mussels rely on catechol and amine functional group enriched proteins to achieve robust...
Catechols offer diverse properties and are used in biology to perform various functions that range f...
International audienceThe possibility to functionalize almost all kinds of interfaces with catechola...
The discovery of 3,4-dihydroxyphenyl-L-alanine (L-DOPA), a catechol-functionalized amino acid as maj...
Mussels can affix themselves to a variety of wet surfaces under harsh marine conditions by secreting...
Inspired by the strong chemical adhesion mechanism of mussels, we designed a catechol-based electroc...
Inspired by the strong chemical adhesion mechanism of mussels, we designed a catechol-based electroc...
Molecular architectures that spontaneously grow exclusively near a surface are rare. Electrodepositi...
We introduce a newly designed catechol-based compound and its application for the preparation of hom...
Catechol reaction mechanisms form the basis of marine mussel adhesion, allowing for bond formation a...
The adhesion of marine mussels has peaked the interest of many in the scientific community because o...
We introduce a newly designed catechol-based compound and its application for the preparation of hom...
Conducting poly(o-aminophenol) films (PoAP) have been electrosynthesized onto Pt substrates by cycli...
The robust, versatile attachment of mussels in the intertidal zone has motivated a large effort to c...
Polyampholyte-based films can be efficiently self-assembled onto a surface in a one-pot manner. By u...
Finding that mussels rely on catechol and amine functional group enriched proteins to achieve robust...
Catechols offer diverse properties and are used in biology to perform various functions that range f...
International audienceThe possibility to functionalize almost all kinds of interfaces with catechola...
The discovery of 3,4-dihydroxyphenyl-L-alanine (L-DOPA), a catechol-functionalized amino acid as maj...
Mussels can affix themselves to a variety of wet surfaces under harsh marine conditions by secreting...