TY - JOUR A1 - Baussard, Jean-Francois A1 - Habib-Jiwan, Jean-Louis A1 - Laschewsky, André A1 - Mertoglu, Murat A1 - Storsberg, Joachim T1 - New chain transfer agents for reversible addition-fragmentation chain transfer (RAFT) polymerisation in aqueous media : 1. Synthesis and stability in water N2 - New chain transfer agents for free radical polymerisation via reversible addition-fragmentation chain transfer (RAFT) were synthesised that are particularly suited for aqueous solution polymerisation. The new compounds bear dithioester and trithiocarbonate moieties as well as permanently ionic groups to confer solubility in water. Their stability against hydrolysis was studied, and compared with the one of a frequently employed water-soluble RAFT agent, using UV-Vis-spectroscopy and H-1-NMR measurements. An improved resistance to hydrolysis was found for the new RAFT agents compared to the reference one, providing good stabilities in the pH range between 1 and 8, and up to temperatures of 70 degreesC. (C) 2004 Elsevier Ltd. All rights reserved Y1 - 2004 ER - TY - THES A1 - Mertoglu, Murat T1 - The synthesis of well-defined functional homo- and block copolymers in aqueous media via Reversible Addition-Fragmentation Chain Transfer (RAFT) Polymerization T1 - - N2 - New chain transfer agents based on dithiobenzoate and trithiocarbonate for free radical polymerization via Reversible Addition-Fragmentation chain Transfer (RAFT) were synthesized. The new compounds bear permanently hydrophilic sulfonate moieties which provide solubility in water independent of the pH. One of them bears a fluorophore, enabling unsymmetrical double end group labelling as well as the preparation of fluorescent labeled polymers. Their stability against hydrolysis in water was studied, and compared with the most frequently employed water-soluble RAFT agent 4-cyano-4-thiobenzoylsulfanylpentanoic acid dithiobenzoate, using UV-Vis and 1H-NMR spectroscopy. An improved resistance to hydrolysis was found for the new RAFT agents, providing good stabilities in the pH range between 1 and 8, and up to temperatures of 70°C. Subsequently, a series of non-ionic, anionic and cationic water-soluble monomers were polymerized via RAFT in water. In these experiments, polymerizations were conducted either at 48°C or 55°C, that are lower than the conventionally employed temperatures (>60°C) for RAFT in organic solvents, in order to minimize hydrolysis of the active chain ends (e.g. dithioester and trithiocarbonate), and thus to obtain good control over the polymerization. Under these conditions, controlled polymerization in aqueous solution was possible with styrenic, acrylic and methacrylic monomers: molar masses increase with conversion, polydispersities are low, and the degree of end group functionalization is high. But polymerizations of methacrylamides were slow at temperatures below 60°C, and showed only moderate control. The RAFT process in water was also proved to be a powerful method to synthesize di- and triblock copolymers including the preparation of functional polymers with complex structure, such as amphiphilic and stimuli-sensitive block copolymers. These include polymers containing one or even two stimuli-sensitive hydrophilic blocks. The hydrophilic character of a single or of several blocks was switched by changing the pH, the temperature or the salt content, to demonstrate the variability of the molecular designs suited for stimuli-sensitive polymeric amphiphiles, and to exemplify the concept of multiple-sensitive systems. Furthermore, stable colloidal block ionomer complexes were prepared by mixing anionic surfactants in aqueous media with a double hydrophilic block copolymer synthesized via RAFT in water. The block copolymer is composed of a noncharged hydrophilic block based on polyethyleneglycol and a cationic block. The complexes prepared with perfluoro decanoate were found so stable that they even withstand dialysis; notably they do not denaturate proteins. So, they are potentially useful for biomedical applications in vivo. N2 - Ziel der vorliegenden Arbeit war es, neue Kettenübertragungs Agenzien, basierend auf Dithiobenzoat- und Trithiocarbonatderivaten zu synthetisieren, welche in der "Reversiblen Additions-Fragmentierungs Kettenübertragungs-Polymerisation" (RAFT) eingesetzt werden können. Die neu synthetisierten Verbindungen zeichnen sich durch permanent hydrophile Sulfonatgruppen aus, welche eine pH-unabhängige Löslichkeit in Wasser ermöglichen. Eine dieser Verbindungen trägt ein Fluorophore, wodurch eine asymmetrische doppelte Endgruppenmarkierung sowie die Herstellung von Fluoreszenzmarkierten Polymeren möglich ist. Die Hydrolysestabilität dieser Verbindungen in wässriger Lösung im Vergleich mit dem z. Zeit bekanntesten wasserlöslichen RAFT Agenz (4-Cyano-4-thiobenzoylsulfanylpentansäuredithiobenzoate) wurde unter Anwendung spektroskopischer Methoden (UV-Vis, 1H-NMR) untersucht. Dabei wurde festgestellt, dass diese neue Verbindungen deutlich bessere Hydrolysestabiltäten im pH-Bereich von 1-8 und bis zu einer Temperatur von 70°C besitzen. Die neuen RAFT-Verbindungen wurden ebenfalls bezgl. Ihrer Eignung in der Polymerisation von wasserlöslichen nichtionischen, anionischen und kationischen Monomeren in wässrigem Medium bei 48°C und 55°C getestet. Unter diesen Bedingungen konnten Vinylverbindungen wie z. B. Styrenderivate. Acrylate und Methacrylate kontrolliert polymerisiert werden: Die Molmasse stieg mit dem Umsatz, die Polydispersitäten waren niedrig und die isolierten Polymere zeigten Grad an Endgruppenfunktionalität. Bei der Polymerisation von Methacrylamiden wurde bei Polymerisationstemperaturen unter 60°C nur eine mäßige Kontrolle gefunden. Es konnte weiterhin die RAFT Polymerisation in Wasser als leistungsstarke Methode zur Herstellung definierter Di- und Triblockcopolymere, einschließlich der Synthese von funktionalen Polymeren mit komplexer Struktur – beispielsweise amphiphiler- und schaltbare (stimuli responsive) Blockcopolymere entwickelt werden. Dies beinhaltet auch Polymere, die einen oder zwei schaltbare hydrophile Polymerblöcke enthalten. Der hydrophile Eigenschaft eines oder mehrer Blöcke kann durch äußere Reize wie pH-Änderung, Temperatur oder Salzgehalt geändert werden. Diese Beispiele demonstrierten die Variabilität des für schaltbare Polyamphiphile notwendigen Designs und zeigten exemplarisch das Konzept für multi-sensitive Systeme. KW - RAFT KW - wasser KW - blockcopolymere KW - stimuli-sensitive KW - RAFT KW - water KW - blockcopolymer KW - stimuli-sensitive Y1 - 2004 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-2338 ER - TY - JOUR A1 - Mertoglu, Murat A1 - Garnier, Sebastien A1 - Laschewsky, André A1 - Skrabania, Katja A1 - Storsberg, J. T1 - Stimuli responsive amphiphilic block copolymers for aqueous media synthesised via reversible addition fragmentation chain transfer polymerisation (RAFT) N2 - A series of RAFT agents was synthesised, and used to prepare various ionic. non-ionic and zwitterionic water- soluble polymers, in organic as well as in aqueous media. The RAFT process proved to be a powerful method to prepare functional polymers of complex structure. such as amphiphilic diblock and triblock copolymers. This includes polymers containing one or even two stimuli-sensitive hydrophilic blocks. Switching the hydrophilic character of a single or of several blocks by changing the PH, the temperature or the salt content demonstrated the variability of the molecular designs suited for stimuli-sensitive polymeric amphiphiles, and exemplified the concept of multiple-sensitive systems. (c) 2005 Published by Elsevier Ltd Y1 - 2005 SN - 0032-3861 ER - TY - JOUR A1 - Mertoglu, Murat A1 - Laschewsky, André A1 - Skrabania, Katja A1 - Wieland, C. T1 - New water soluble agents for reversible addition-fragmentation chain transfer polymerization and their application in aqueous solutions N2 - A series of nonionic, anionic, and cationic water-soluble monomers bearing the (meth)acrylate, (meth)acrylamide, or styrene moiety were polymerized in water by free-radical polymerization via reversible addition- fragmentation chain transfer (RAFT). Several new water-soluble RAFT agents based on dithiobenzoate were employed that are water soluble independently of the pH. One of them bears a fluorophore, enabling unsymmetrical double end-group labeling as well as the preparation of fluorescent-labeled polymers. The temperature-dependent stability of the new RAFT agents against hydrolysis was studied. Controlled polymerization in aqueous solution was possible with styrenic, acrylic, and methacrylic monomers; molar masses increase with conversion, and polydispersities are relatively low. But RAFT polymerization failed for an anionic itaconate. Whereas polymerizations of methacrylamides were slow at temperatures below 60 degrees C, such conditions proved favorable for the RAFT polymerization of acrylates and methacrylates, to minimize hydrolysis of the dithioester end-group functionality, and to improve the preparation of block copolymers Y1 - 2005 SN - 0024-9297 ER - TY - JOUR A1 - Laschewsky, André A1 - Garnier, Sebastien A1 - Kirsten, Juliane A1 - Mertoglu, Murat A1 - Skrabania, Katja A1 - Lutz, Jean-Francois T1 - Comb-like polymeric surfactants by combining block and graft copolymer architectures Y1 - 2006 SN - 0065-7727 ER -