Complex Coacervates: From Polyelectrolyte Solutions to Multifunctional Hydrogels for Bioinspired Crystallization

Hydrogels represent multifarious functional materials due to their diverse ranges of applicability and physicochemical properties. The complex coacervation of polyacrylate and calcium ions or polyamines with phosphates has been uncovered to be a fascinating approach to synthesizing of multifunctiona...

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Published in:Crystals
Main Authors: Dominik Gruber, Cristina Ruiz-Agudo, Ashit Rao, Simon Pasler, Helmut Cölfen, Elena V. Sturm
Format: Article
Language:English
Published: MDPI AG 2024-11-01
Subjects:
Online Access:https://www.mdpi.com/2073-4352/14/11/959
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author Dominik Gruber
Cristina Ruiz-Agudo
Ashit Rao
Simon Pasler
Helmut Cölfen
Elena V. Sturm
author_facet Dominik Gruber
Cristina Ruiz-Agudo
Ashit Rao
Simon Pasler
Helmut Cölfen
Elena V. Sturm
author_sort Dominik Gruber
collection DOAJ
container_title Crystals
description Hydrogels represent multifarious functional materials due to their diverse ranges of applicability and physicochemical properties. The complex coacervation of polyacrylate and calcium ions or polyamines with phosphates has been uncovered to be a fascinating approach to synthesizing of multifunctional physically crosslinked hydrogels. To obtain this wide range of properties, the synthesis pathway is of great importance. For this purpose, we investigated the entire mechanism of calcium/polyacrylate, as well as phosphate/polyamine coacervation, starting from early dynamic ion complexation by the polymers, through the determination of the phase boundary and droplet formation, up to the growth and formation of thermodynamically stable macroscopic coacervate hydrogels. By varying the synthesis procedure, injectable hydrogels, as well as plastic coacervates, are presented, which cover a viscosity range of three orders of magnitude. Furthermore, the high calcium content of the calcium/polyacrylate coacervate (~19 wt.%) enables the usage of those coacervates as an ions reservoir for the formation of amorphous and crystalline calcium-containing salts like calcium carbonates and calcium phosphates. The exceptional properties of the coacervates obtained here, such as thermodynamic stability, viscosity/plasticity, resistance to acids, and adhesive strength, combined with the straightforward synthesis and the character of an ions reservoir, open a promising field of bioinspired composite materials for osteology and dentistry.
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spelling doaj-art-e45a1ffef724467286b3ae2f012e5dcf2025-08-20T02:28:12ZengMDPI AGCrystals2073-43522024-11-01141195910.3390/cryst14110959Complex Coacervates: From Polyelectrolyte Solutions to Multifunctional Hydrogels for Bioinspired CrystallizationDominik Gruber0Cristina Ruiz-Agudo1Ashit Rao2Simon Pasler3Helmut Cölfen4Elena V. Sturm5Physical Chemistry, Department of Chemistry, University of Konstanz, Universitätsstr. 10, 78547 Konstanz, GermanyPhysical Chemistry, Department of Chemistry, University of Konstanz, Universitätsstr. 10, 78547 Konstanz, GermanyFaculty of Science and Technology, University of Twente, 7500 AE Enschede, The NetherlandsPhysical Chemistry, Department of Chemistry, University of Konstanz, Universitätsstr. 10, 78547 Konstanz, GermanyPhysical Chemistry, Department of Chemistry, University of Konstanz, Universitätsstr. 10, 78547 Konstanz, GermanyPhysical Chemistry, Department of Chemistry, University of Konstanz, Universitätsstr. 10, 78547 Konstanz, GermanyHydrogels represent multifarious functional materials due to their diverse ranges of applicability and physicochemical properties. The complex coacervation of polyacrylate and calcium ions or polyamines with phosphates has been uncovered to be a fascinating approach to synthesizing of multifunctional physically crosslinked hydrogels. To obtain this wide range of properties, the synthesis pathway is of great importance. For this purpose, we investigated the entire mechanism of calcium/polyacrylate, as well as phosphate/polyamine coacervation, starting from early dynamic ion complexation by the polymers, through the determination of the phase boundary and droplet formation, up to the growth and formation of thermodynamically stable macroscopic coacervate hydrogels. By varying the synthesis procedure, injectable hydrogels, as well as plastic coacervates, are presented, which cover a viscosity range of three orders of magnitude. Furthermore, the high calcium content of the calcium/polyacrylate coacervate (~19 wt.%) enables the usage of those coacervates as an ions reservoir for the formation of amorphous and crystalline calcium-containing salts like calcium carbonates and calcium phosphates. The exceptional properties of the coacervates obtained here, such as thermodynamic stability, viscosity/plasticity, resistance to acids, and adhesive strength, combined with the straightforward synthesis and the character of an ions reservoir, open a promising field of bioinspired composite materials for osteology and dentistry.https://www.mdpi.com/2073-4352/14/11/959hydrogelpolyacrylatepolyaminecalcium phosphatecalcium carbonatedentistry
spellingShingle Dominik Gruber
Cristina Ruiz-Agudo
Ashit Rao
Simon Pasler
Helmut Cölfen
Elena V. Sturm
Complex Coacervates: From Polyelectrolyte Solutions to Multifunctional Hydrogels for Bioinspired Crystallization
hydrogel
polyacrylate
polyamine
calcium phosphate
calcium carbonate
dentistry
title Complex Coacervates: From Polyelectrolyte Solutions to Multifunctional Hydrogels for Bioinspired Crystallization
title_full Complex Coacervates: From Polyelectrolyte Solutions to Multifunctional Hydrogels for Bioinspired Crystallization
title_fullStr Complex Coacervates: From Polyelectrolyte Solutions to Multifunctional Hydrogels for Bioinspired Crystallization
title_full_unstemmed Complex Coacervates: From Polyelectrolyte Solutions to Multifunctional Hydrogels for Bioinspired Crystallization
title_short Complex Coacervates: From Polyelectrolyte Solutions to Multifunctional Hydrogels for Bioinspired Crystallization
title_sort complex coacervates from polyelectrolyte solutions to multifunctional hydrogels for bioinspired crystallization
topic hydrogel
polyacrylate
polyamine
calcium phosphate
calcium carbonate
dentistry
url https://www.mdpi.com/2073-4352/14/11/959
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