Poly(dehydroalanine)‐Based Hydrogels as Efficient Soft Matter Matrices for Light‐Driven Catalysis

Author:

Çeper Tolga123,Langer Marcel4,Vashistha Nikita56,Dietzek‐Ivanšić Benjamin56,Streb Carsten4,Rau Sven7,Schacher Felix H.123ORCID

Affiliation:

1. Institute of Organic Chemistry and Macromolecular Chemistry Friedrich Schiller University Jena Humboldtstraße 10 D‐07743 Jena Germany

2. Jena Center for Soft Matter (JCSM) Friedrich Schiller University Jena Philosophenweg 7 D‐07743 Jena Germany

3. Center for Energy and Environmental Chemistry Jena (CEEC) Friedrich Schiller University Jena Philosophenweg 7a 07743 Jena Germany

4. Department of Chemistry Johannes Gutenberg University Mainz Duesbergweg 10–14 55128 Mainz Germany

5. Institute of Physical Chemistry Friedrich‐Schiller‐University Jena Helmholtzweg 4 D‐07743 Jena Germany

6. Leibniz Institute of Photonic Technology Jena Department of Functional Interfaces Albert Einstein Allee 9 D‐07745 Jena Germany

7. Institute of Inorganic Chemistry I Ulm University Albert‐Einstein‐Allee 11 89081 Ulm Germany

Abstract

AbstractSoft matter integration of photosensitizers and catalysts provides promising solutions to developing sustainable materials for energy conversion. Particularly, hydrogels bring unique benefits, such as spatial control and 3D‐accessibility of molecular units, as well as recyclability. Herein, the preparation of polyampholyte hydrogels based on poly(dehydroalanine) (PDha) is reported. Chemically crosslinked PDha with bis‐epoxy poly(ethylene glycol) leads to a transparent, self‐supporting hydrogel. Due to the ionizable groups on PDha, this 3D polymeric matrix can be anionic, cationic, or zwitterionic depending on the pH value, and its high density of dynamic charges has a potential for electrostatic attachment of charged molecules. The integration of the cationic molecular photosensitizer [Ru(bpy)3]2+ (bpy = 2,2′‐bipyridine) is realized, which is a reversible process controlled by pH, leading to light harvesting hydrogels. They are further combined with either a thiomolybdate catalyst ([Mo3S13]2−) for hydrogen evolution reaction (HER) or a cobalt polyoxometalate catalyst (Co4POM = [Co4(H2O)2(PW9O34)2]10−) for oxygen evolution reaction (OER). Under the optimized condition, the resulting hydrogels show catalytic activity in both cases upon visible light irradiation. In the case of OER, higher photosensitizer stability is observed compared to homogeneous systems, as the polymer environment seems to influence decomposition pathways.

Funder

Deutscher Akademischer Austauschdienst

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Organic Chemistry

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