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Biocatalytic ATRP in solution and on surfaces
Kyle J Rodriguez1, Michela M Pellizzoni1, Mohammad Divandari2
1Adolphe Merkle Institute, University of Fribourg, Fribourg, Switzerland.
Enzymes catalyze polymer synthesis using activator regenerated by electron transfer (ARGET) atom transfer radical polymerization (ATRP). This review details biocatalytic ATRP methods for creating well-defined polymers and surface-attached polymer brushes.
Area of Science:
- Biocatalysis
- Polymer Chemistry
- Surface Science
Background:
- Enzyme promiscuity enables catalysis of non-native reactions.
- Metalloenzymes can be utilized in controlled polymerization techniques.
- Activator regenerated by electron transfer (ARGET) atom transfer radical polymerization (ATRP) offers precise polymer synthesis.
Purpose of the Study:
- To review biocatalytic ATRP (bioATRP) in solution and on surfaces.
- To provide experimental protocols for hemoglobin-catalyzed ATRP.
- To detail surface-initiated biocatalytic ATRP methods.
Main Methods:
- Utilizing metalloenzymes for redox activity in ARGET ATRP.
- Developing protocols for hemoglobin-catalyzed polymerization.
- Implementing surface-initiated biocatalytic ATRP.
- Polymerization of acrylate and acrylamide monomers.
Main Results:
- Demonstration of well-controlled and defined polymer generation using bioATRP.
- Successful hemoglobin-catalyzed ATRP in solution.
- Effective surface-initiated biocatalytic ATRP for polymer brush synthesis.
- Detailed characterization of polymers and polymer brushes.
Conclusions:
- BioATRP is a viable method for controlled polymer synthesis.
- Metalloenzymes offer a sustainable and efficient catalytic system for ATRP.
- The provided protocols facilitate the implementation of bioATRP for various applications.
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