TY - JOUR A1 - Weis, Philipp A1 - Hess, Andreas A1 - Kircher, Gunnar A1 - Huang, Shilin A1 - Auernhammer, Günter K. A1 - Koynov, Kaloian A1 - Butt, Hans-Jürgen A1 - Wu, Si T1 - Effects of Spacers on Photoinduced Reversible Solid-to-Liquid Transitions of Azobenzene-Containing Polymers JF - Chemistry - a European journal N2 - Photoisomerization in some azobenzene-containing polymers (azopolymers) results in reversible solid-to-liquid transitions because trans- and cis-azopolymers have different glass transition temperatures. This property enables photoinduced healing and processing of azopolymers with high spatiotemporal resolution. However, a general lack of knowledge about the influence of the polymer structure on photoinduced reversible solid-to-liquid transitions hinders the design of such novel polymers. Herein, the synthesis and photoresponsive behavior of new azopolymers with different lengths of spacers between the polymer backbone and the azobenzene group on the side chain are reported. Azopolymers with no and 20 methylene spacers did not show photoinduced solid-to-liquid transitions. Azopolymers with 6 or 12 methylene spacers showed photoinduced solid-to-liquid transitions. This study demonstrates that spacers are essential for azopolymers with photoinduced reversible solid-to-liquid transitions, and thus, gives an insight into how to design azopolymers for photoinduced healing and processing. KW - azobenzenes KW - isomerization KW - photochemistry KW - polymers KW - self-healing Y1 - 2019 U6 - https://doi.org/10.1002/chem.201902273 SN - 0947-6539 SN - 1521-3765 VL - 25 IS - 46 SP - 10946 EP - 10953 PB - Wiley-VCH CY - Weinheim ER - TY - GEN A1 - Raju, Rajarshi Roy A1 - Liebig, Ferenc A1 - Hess, Andreas A1 - Schlaad, Helmut A1 - Koetz, Joachim T1 - Temperature-triggered reversible breakdown of polymer-stabilized olive BT - silicone oil Janus emulsions T2 - Postprints der Universität Potsdam Mathematisch-Naturwissenschaftliche Reihe N2 - A one-step moderate energy vibrational emulsification method was successfully employed to produce thermo-responsive olive/silicone-based Janus emulsions stabilized by poly(N,N-diethylacrylamide) carrying 0.7 mol% oleoyl side chains. Completely engulfed emulsion droplets remained stable at room temperature and could be destabilized on demand upon heating to the transition temperature of the polymeric stabilizer. Time-dependent light micrographs demonstrate the temperature-induced breakdown of the Janus droplets, which opens new aspects of application, for instance in biocatalysis. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 751 KW - microgels KW - step Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-436461 SN - 1866-8372 IS - 751 SP - 19271 EP - 19277 ER - TY - JOUR A1 - Behrendt, Felix Nicolas A1 - Hess, Andreas A1 - Lehmann, Max A1 - Schmidt, Bernd A1 - Schlaad, Helmut T1 - Polymerization of cystine-derived monomers JF - Polymer Chemistry N2 - Cystine was used as a platform chemical to prepare cyclic and acyclic monomers for entropy-driven ringopening polymerization (ED-ROMP) via olefin or disulfide metathesis and for step-growth polymerization. The olefin ED-ROMP of an olefin/disulfide containing 16-atom macrocycle using the 3rd generation Grubbs catalyst was examined in greater detail. Kinetic studies revealed that the catalyst turned inactive during the polymerization, which limited the achievable (apparent) polymer molar mass to similar to 70 kg mol(-1). Such limitation could be overcome with the disulfide ED-ROMP of the same macrocycle to yield polymers with molar masses of up to 180 kg mol(-1). The step-growth polymerizations of acyclic diene and dithiol monomers via olefin metathesis or oxidation were far less effective and yielded just low molar mass polymers or oligomers; photopolymerization of a thiol-ene monomer produced a polyester with a molar mass of 35 kg mol(-1). Y1 - 2019 U6 - https://doi.org/10.1039/c9py00118b SN - 1759-9954 SN - 1759-9962 VL - 10 IS - 13 SP - 1636 EP - 1641 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Raju, Rajarshi Roy A1 - Liebig, Ferenc A1 - Hess, Andreas A1 - Schlaad, Helmut A1 - Koetz, Joachim T1 - Temperature-triggered reversible breakdown of polymer-stabilized olive BT - silicone oil Janus emulsions JF - RSC Advances N2 - A one-step moderate energy vibrational emulsification method was successfully employed to produce thermo-responsive olive/silicone-based Janus emulsions stabilized by poly(N,N-diethylacrylamide) carrying 0.7 mol% oleoyl side chains. Completely engulfed emulsion droplets remained stable at room temperature and could be destabilized on demand upon heating to the transition temperature of the polymeric stabilizer. Time-dependent light micrographs demonstrate the temperature-induced breakdown of the Janus droplets, which opens new aspects of application, for instance in biocatalysis. KW - microgels KW - step Y1 - 2019 U6 - https://doi.org/10.1039/c9ra03463c SN - 2046-2069 VL - 9 IS - 35 SP - 19271 EP - 19277 PB - RSC Publishing CY - London ER - TY - JOUR A1 - Matic, Aleksandar A1 - Hess, Andreas A1 - Schanzenbach, Dirk A1 - Schlaad, Helmut T1 - Epoxidized 1,4-polymyrcene JF - Polymer chemistry N2 - 1,4-Polymyrcene was synthesized by anionic polymerization and epoxidized using meta-chloroperbenzoic acid. Samples with different degrees of epoxidation (25%, 49%, 74%, and 98%) were prepared and examined according to their chemical and thermal properties. Epoxidation was found to increase the glass transition temperature (T-g = 14 degrees C for the 98% epoxidized 1,4-polymyrcene) as well as the shelf live (>10 months). The trisubstituted epoxide groups were remarkably stable against nucleophiles under basic conditions but cross-linked or hydrolyzed in the presence of an acid. Also, highly epoxidized 1,4-polymyrcene readily cross-linked upon annealing at 260 degrees C to produce an epoxy resin. KW - comb poly(beta-myrcene)-graft-poly(l-lactide) copolymers KW - thermoplastic elastomer synthesis KW - myrcen KW - polymerization KW - epoxidation Y1 - 2020 U6 - https://doi.org/10.1039/c9py01783f SN - 1759-9954 SN - 1759-9962 VL - 11 IS - 7 SP - 1364 EP - 1368 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Hess, Andreas A1 - Schmidt, Bernhard Volkmar Konrad Jakob A1 - Schlaad, Helmut T1 - Aminolysis induced functionalization of (RAFT) polymer-dithioester with thiols and disulfides JF - Polymer Chemistry N2 - A series of polystyrene- and poly(methyl methacrylate)-dithioesters was subjected to aminolysis under ambient atmospheric conditions, i.e., in the presence of oxygen. Polymer disulfide coupling by oxidation occurred within tens of minutes and the yield of disulfide-coupled polymer increased with decreasing polymer molar mass. Oxidation of thiolates is usually an unwanted side reaction, here it is employed to obtain exclusively polymeric mixed disulfides through in situ aminolysis/functionalization in the presence of a thiol. The in situ aminolysis/functionalization in the presence of a disulfide, Ellman's reagent or polymer disulfide, resulted in the exclusive formation of polymer-dithionitrobenzoic acid, which can be further reacted with a thiol to exchange the terminal functionality, or block copolymer with dynamic disulfide linker, respectively. Y1 - 2020 U6 - https://doi.org/10.1039/d0py01365j SN - 1759-9954 SN - 1759-9962 VL - 11 IS - 48 SP - 7677 EP - 7684 PB - Royal Society of Chemistry CY - Cambridge ER - TY - THES A1 - Hess, Andreas T1 - Synthese von funktionalisierbaren und abbaubaren Polymersystemen mit Disulfiden T1 - Synthesis of functionalizable and degradable polymer systems with disulfides N2 - Die vorliegende Arbeit beschäftigt sich mit der Synthese von Disulfiden, der Thiol-Disulfid Metathesereaktion als Möglichkeit, Polymere zu funktionalisieren, und der Synthese von Polydisulfiden. Im ersten Teil der Arbeit wird die Aminolyse von RAFT-Polymeren und die Abhängigkeit der Polymer-Polymer Disulfidbildung von der Molmasse untersucht. Dabei wurde durch die Aufnahme von Reaktionskinetiken mittels Gel-Permeations-Chromatographie (GPC) festgestellt, dass je länger die Polymerketten sind, desto weniger Disulfid Polymerkopplung tritt auf. RAFT-Polymere werden oft genutzt, um die RAFT-Polymer Endgruppe nach der Polymerisation zu modifizieren oder in einer chemischen Reaktion zu funktionalisieren. Hier kann die Aminolyse in Anwesenheit von kurzkettigen Disulfiden, wie zum Beispiel Cystin, durchgeführt werden, um die Bildung von Polymer-Polymer Disulfiden vollständig zu unterdrücken und ein endgruppenfunktionalisiertes Polymer zu erhalten. Bei dieser Reaktion greift das bei der Aminolyse entstehende Polymerthiolat die kurzkettigen Disulfide an, und es kommt zur Bildung von funktionalisierten Polymeren. Es wurde ein Polyethylenglykoldisulfid eingesetzt, um ein amphiphiles Blockcopolymer zu erhalten. Als RAFT-Polymer wurde Polystyrol (PS) verwendet, und es konnte die Bildung von Polystyrol-Polyethylenglykol Copolymeren nachgewiesen werden. Das amphiphile Polymer bildet im wässrigen Medium Vesikel. Die Oberfläche der Vesikel konnte mittels der Thiol-Disulfid Metathese umfunktionalisiert werden. Die Aminolyse von PS RAFT-Polymeren mit einem Polylaktiddisulfid oder einem Polybenzylglutamatdisulfid ergab Polystyrol-block-Polyester und Polystyrol-block-Polyaminosäuren Copolymere. Im zweiten Teil der Arbeit liegt der Fokus auf der Synthese von Polydisulfiden und ihren thermischen Eigenschaften. Es wurden verschiedene Alkyldithiole synthetisiert und mittels Wasserstoffperoxid und Triethylamin polymerisiert. Dabei konnte gezeigt werden, dass die Polymere teilkristallin sind und dass der Schmelzpunkt und die Kristallinität der Polymere mit steigender Alkylkettenlänge zwischen den Disulfidbindungen zunehmen. Die Möglichkeit einer Polymerkettenerweiterung nach der Polymerisation ist mit diesem System gegeben. Die Abbaubarkeit der Polydisulfide konnte durch den Einsatz von Thiolen im basischen Milieu gezeigt werden. N2 - This thesis deals with the synthesis of polymer disulfides, the thiol-disulfide metathesis reaction as a method for functionalization of polymers and the synthesis of polydisulfides. The first part covers the aminolysis of RAFT polymers and the molecular weight dependence of disulfide formation during the RAFT-end group removal. Kinetics of aminolysis reaction for different RAFT polymers with different molecular weight were analyzed by size-exclusion chromatography (SEC). The RAFT polymers tend to form less dimers with increasing molecular weight. It was tried to cleave the disulfide bonds between the polymers with thiols. When the aminolysis of RAFT polymers was performed in the presence of different disulfides, only functionalized polymers were obtained. The formation of polymer-polymer disulfide bond during the aminolysis was completely suppressed in the presence of low molecular weight disulfides. This functionalization of RAFT polymers is not limited to end groups but is also useful for the synthesis of block copolymers. An amphiphilic block copolymer containing polystyrene (PS) and polyethylene glycol (PEG) was produced from a PS RAFT polymer and a PEG disulfide. This PS-PEG block copolymer undergoes self assembly to form vesicular structures in water. The outer shell of these vesicles were modified by selective removal of the PEG polymers followed by attachment of Ellman’s reagent on the surface. When the aminolysis of polystyrene RAFT polymers was performed in the presence of polylactide disulfides or polybenzylglutamate disulfides, polystyrene-block-polyester and polystyrene-block-polyaminoacid copolymers were obtained. The second part of this thesis deals with the synthesis of polydisulfides and their thermal properties. Dithiols with different alkyl chain lengths were synthesized and polymerized to form polydisulfides. This polymerization is performed by using triethylamine and hydrogen peroxide. The triethylamine is used as base to deprotonate the thiol to form a thiolate ion which then is oxidized by hydrogen peroxide to a disulfide. The obtained polydisulfides are semicrystalline in nature. The crystallinity as well as the melting temperature of polydisulfides increases with increasing alkyl chain length. These polydisulfides are degradable under basic conditions. KW - RAFT-Polymerisation KW - Aminolyse KW - Funktionalisierung KW - Vesikel KW - Polydisulfide KW - RAFT polymerization KW - aminolysis KW - functionalization KW - vesicle KW - poly(disulfide)s Y1 - 2021 ER -