TY - JOUR A1 - Vishnevetskaya, Natalya S. A1 - Hildebrand, Viet A1 - Niebuur, Bart-Jan A1 - Grillo, Isabelle A1 - Filippov, Sergey K. A1 - Laschewsky, Andre A1 - Müller-Buschbaum, Peter A1 - Papadakis, Christine M. T1 - Aggregation Behavior of Doubly Thermoresponsive Polysulfobetaine-b-poly(N-isopropylacrylamide) Diblock Copolymers JF - Macromolecules : a publication of the American Chemical Society N2 - A 2-fold thermoresponsive diblock copolymer PSPP430-b-PNIPAM(200) consisting of a zwitterionic polysulfobetaine (PSPP) block and a nonionic poly(N-isopropylacrylamide) (PNIPAM) block is prepared by successive RAFT polymerizations. In aqueous solution, the corresponding homopolymers PSPP and PNIPAM feature both upper and lower critical solution temperature (UCST and LCST) behavior, respectively. The diblock copolymer exhibits thermally induced "schizophrenic" aggregation behavior in aqueous solutions. Moreover, the ion sensitivity of the, cloud point of the zwitterionic PSPP block to both the ionic strength and the nature of the salt offers the possibility to create switchable systems which respond sensitively to changes of the temperature and of the electrolyte type and concentration. The diblock copolymer solutions in D2O are investigated by means of turbidimetry and small-angle neutron scattering (SANS) with respect to the phase behavior and the self-assembled structures in dependence on temperature and electrolyte content. Marked, differences of the aggregation below the UCST-type and above the LCST-type transition are observed. The addition of a small amount of NaBr (0.004 M) does not affect the overall behavior, and only the UCST-type transition and aggregate structures are slightly altered, reflecting the well-known ion sensitivity of the zwitterionic PSPP block. Y1 - 2016 U6 - https://doi.org/10.1021/acs.macromol.6b01186 SN - 0024-9297 SN - 1520-5835 VL - 49 SP - 6655 EP - 6668 PB - American Chemical Society CY - Washington ER - TY - GEN A1 - Hildebrand, Viet A1 - Laschewsky, André A1 - Päch, Michael A1 - Müller-Buschbaum, Peter A1 - Papadakis, Christine M. T1 - Effect of the zwitterion structure on the thermo-responsive behaviour of poly(sulfobetaine methacrylates) N2 - A series of new sulfobetaine methacrylates, including nitrogen-containing saturated heterocycles, was synthesised by systematically varying the substituents of the zwitterionic group. Radical polymerisation via the RAFT (reversible addition–fragmentation chain transfer) method in trifluoroethanol proceeded smoothly and was well controlled, yielding polymers with predictable molar masses. Molar mass analysis and control of the end-group fidelity were facilitated by end-group labeling with a fluorescent dye. The polymers showed distinct thermo-responsive behaviour of the UCST (upper critical solution temperature) type in an aqueous solution, which could not be simply correlated to their molecular structure via an incremental analysis of the hydrophilic and hydrophobic elements incorporated within them. Increasing the spacer length separating the ammonium and the sulfonate groups of the zwitterion moiety from three to four carbons increased the phase transition temperatures markedly, whereas increasing the length of the spacer separating the ammonium group and the carboxylate ester group on the backbone from two to three carbons provoked the opposite effect. Moreover, the phase transition temperatures of the analogous polyzwitterions decreased in the order dimethylammonio > morpholinio > piperidinio alkanesulfonates. In addition to the basic effect of the polymers’ precise molecular structure, the concentration and the molar mass dependence of the phase transition temperatures were studied. Furthermore, we investigated the influence of added low molar mass salts on the aqueous-phase behaviour for sodium chloride and sodium bromide as well as sodium and ammonium sulfate. The strong effects evolved in a complex way with the salt concentration. The strength of these effects depended on the nature of the anion added, increasing in the order sulfate < chloride < bromide, thus following the empirical Hofmeister series. In contrast, no significant differences were observed when changing the cation, i.e. when adding sodium or ammonium sulfate. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 298 Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-102028 ER - TY - JOUR A1 - Hildebrand, Viet A1 - Laschewsky, Andre A1 - Wischerhoff, Erik T1 - Modulating the solubility of zwitterionic poly((3methacrylamidopropyl)ammonioalkane sulfonate)s in water and aqueous salt solutions via the spacer group separating the cationic and the anionic moieties JF - Polymer Chemistry N2 - Complementary to the well-established zwitterionic monomer 3-((3-methacrylamidopropyl) dimethylammonio) propane-1-sulfonate (SPP), the closely related monomers 2-hydroxy-3-((3-methacrylamidopropyl) dimethylammonio) propane-1-sulfonate (SHPP) and 4-((3-methacrylamidopropyl) dimethylammonio)butane- 1-sulfonate (SBP) were synthesised and polymerised by reversible addition-fragmentation chain transfer (RAFT) polymerisation, using a fluorophore labeled RAFT agent. The polyzwitterions of systematically varied molar masses were characterised with respect to their solubility in water and aqueous salt solutions. Both poly(sulfobetaine)s show thermoresponsive behaviour in water, exhibiting phase separation at low temperatures and upper critical solution temperatures (UCST). For both polySHPP and polySBP, cloud points depend notably on the molar mass, and are much higher in D2O than in H2O. Also, the cloud points are effectively modulated by the addition of salts. The individual effects can be in parts correlated to the Hofmeister series for the anions studied. Still, they depend in a complex way on the concentration and the nature of the added electrolytes, on the one hand, and on the detailed nature of the spacer group separating the anionic and the cationic charges of the betaine moiety, on the other hand. As anticipated, the cloud points of polySBP are much higher than the ones of the analogous polySPP of identical molar mass. Surprisingly, the cloud points of polySHPP are also somewhat higher than the ones of their polySPP analogues, despite the additional hydrophilic hydroxyl group present in the spacer separating the ammonium and the sulfonate moieties. These findings point to a complicated interplay of the various hydrophilic components in polyzwitterions with respect to their overall hydrophilicity. Thus, the spacer group in the betaine moiety proves to be an effective additional molecular design parameter, apparently small variations of which strongly influence the phase behaviour of the polyzwitterions in specific aqueous environments. Y1 - 2016 U6 - https://doi.org/10.1039/c5py01642h SN - 1759-9954 SN - 1759-9962 VL - 7 SP - 731 EP - 740 PB - Royal Society of Chemistry CY - Cambridge ER - TY - THES A1 - Hildebrand, Viet T1 - Twofold switchable block copolymers based on new polyzwitterions T1 - Neue Polyzwitterionbasierte Blockcopolymere mit „Schizophrenem Verhalten“ N2 - In complement to the well-established zwitterionic monomers 3-((2-(methacryloyloxy)ethyl)dimethylammonio)propane-1-sulfonate (“SPE”) and 3-((3-methacrylamidopropyl)dimethylammonio)propane-1-sulfonate (“SPP”), the closely related sulfobetaine monomers were synthesized and polymerized by reversible addition-fragmentation chain transfer (RAFT) polymerization, using a fluorophore labeled RAFT agent. The polyzwitterions of systematically varied molar mass were characterized with respect to their solubility in water, deuterated water, and aqueous salt solutions. These poly(sulfobetaine)s show thermoresponsive behavior in water, exhibiting upper critical solution temperatures (UCST). Phase transition temperatures depend notably on the molar mass and polymer concentration, and are much higher in D2O than in H2O. Also, the phase transition temperatures are effectively modulated by the addition of salts. The individual effects can be in parts correlated to the Hofmeister series for the anions studied. Still, they depend in a complex way on the concentration and the nature of the added electrolytes, on the one hand, and on the detailed structure of the zwitterionic side chain, on the other hand. For the polymers with the same zwitterionic side chain, it is found that methacrylamide-based poly(sulfobetaine)s exhibit higher UCST-type transition temperatures than their methacrylate analogs. The extension of the distance between polymerizable unit and zwitterionic groups from 2 to 3 methylene units decreases the UCST-type transition temperatures. Poly(sulfobetaine)s derived from aliphatic esters show higher UCST-type transition temperatures than their analogs featuring cyclic ammonium cations. The UCST-type transition temperatures increase markedly with spacer length separating the cationic and anionic moieties from 3 to 4 methylene units. Thus, apparently small variations of their chemical structure strongly affect the phase behavior of the polyzwitterions in specific aqueous environments. Water-soluble block copolymers were prepared from the zwitterionic monomers and the non-ionic monomer N-isopropylmethacrylamide (“NIPMAM”) by the RAFT polymerization. Such block copolymers with two hydrophilic blocks exhibit twofold thermoresponsive behavior in water. The poly(sulfobetaine) block shows an UCST, whereas the poly(NIPMAM) block exhibits a lower critical solution temperature (LCST). This constellation induces a structure inversion of the solvophobic aggregate, called “schizophrenic micelle”. Depending on the relative positions of the two different phase transitions, the block copolymer passes through a molecularly dissolved or an insoluble intermediate regime, which can be modulated by the polymer concentration or by the addition of salt. Whereas, at low temperature, the poly(sulfobetaine) block forms polar aggregates that are kept in solution by the poly(NIPMAM) block, at high temperature, the poly(NIPMAM) block forms hydrophobic aggregates that are kept in solution by the poly(sulfobetaine) block. Thus, aggregates can be prepared in water, which switch reversibly their “inside” to the “outside”, and vice versa. N2 - Diese Arbeit befasst sich mit der Synthese und Charakterisierung von doppelt thermisch-responsiven Blockcopolymeren mit einem polaren nicht-ionischen Block (der einen LCST-Übergang in wässriger Lösung induziert) und einem zwitterionischen Block (der einen UCST-Übergang aufweisen soll), der durch Salzzusatz über einen weiten Temperaturbereich modulierbar ist. Dafür wurden geeignete zwitterionische Polymer¬blöcke identifiziert und hergestellt, die ein derartiges Löslichkeitsprofil aufweisen. Da bislang nur relativ wenige Poly-sulfobetaine beschrieben sind und entsprechend das wässrige Phasenverhalten nur für einzelne ausgewählte Polymere bekannt ist, wurde ein Grundverständnis von chemischer Struktur und Phasen¬übergangs¬verhalten durch eine systematische Variation des Substitutionsmusters angestrebt. Die als geeignet erkannten Sulfobetain-Monomere wurden mit dem nicht-ionischen Monomer N-Isopropyl-methacrylamid („NIPMAM“) zu Blockcopolymeren von unterschiedlicher Größe und Blocklängen zusammengefügt. Die neuen Blockcopolymere wurden anschließend bezüglich der Lage der Phasenübergänge mit Trübheitsmessungen untersucht. Es wurden 2 Serien neuer zwitterionischer Monomere synthetisiert, deren Struktur den sehr gut untersuchten 3-((2-(methacryloyloxy)ethyl)dimethylammonio)propane-1-sulfonate („SPE“) und 3-((3-methacrylamidopropyl)dimethylammonio)propane-1-sulfonate („SPP“) ähnlich ist. Aus den Monomeren wurden fluoreszenz-markierte Homopolymere mit unterschiedlichen Molmassen mittels der Reversiblen Additions-Fragmentierungs Kettenübertragungs (RAFT) – Polymerisation unter Verwendung eines geeigneten RAFT Reagenzes synthetisiert. Die Poly¬sulfobetaine wurden bezüglich ihrer Löslichkeit in Wasser, in deuteriertem Wasser und in Salzlösungen untersucht. Ihr wässriges Phasenverhalten mit einem UCST-Übergang ist stark abhängig von ihrer Molmasse und von der Polymerkonzentration der untersuchten Lösung. Auffällig ist, dass die Phasenübergangstemperatur in D2O deutlich höher liegt als in H2O. Des Weiteren konnten die Löslichkeit und Phasen-übergangstemperatur durch Salzzusatz effektiv moduliert werden. Prinzipiell stellte sich bei den untersuchten Anionen heraus, dass das Einsalzen bzw. das Aussalzen der empirischen Hofmeister Serie folgt. Dabei hängen die individuellen Effekte sehr stark von der Konzentration und von der Art des Salzes, aber auch in nicht-trivialer Weise von der detaillierten zwitterionischen Struktur stark ab. Durch die systematische Variation der Monomerstruktur wurden interessante Tendenzen offenbar. Die Methacrylamid-basierte Polysulfobetaine besitzen eine höhere Phasenübergangstemperatur als ihre Methacrylat-basierten Analoga. Die Vergrößerung der Distanz zwischen Polymerrückrat und der zwitterionischen Gruppe von 2 auf 3 Methylengruppen führt zu einer Erniedrigung der Phasenübergangstemperatur. Polysulfobetaine mit aliphatischen Resten (Methyl-gruppen) am Ammonium-Ion haben eine höhere Phasenübergangstemperatur als ihre Analoga, in denen der Ammonium-Stickstoff Teil eines Heterozyklus ist. Als letzte Strukturvariable wurde die Distanz zwischen Kation und Anion von 3 auf 4 Methylengruppen vergrößert; diese Änderung führt zu einer massiven Erhöhung der Phasenübergangstemperatur. Die Polysulfobetaine wurden verwendet, um mit dem nicht-ionischen Monomer NIPMAM wasserlösliche Blockcopolymere mittels der RAFT Polymerisation herzustellen. Diese Blockcopolymere besitzen doppelt thermisch-responsives Verhalten (mit einem UCST- und einem LCST-Übergang). Die Besonderheit einer solchen Konstellation ist, dass eine Strukturinversion der solvophoben Aggregate induziert werden kann. Daher werden solche Blockcopolymer-Assoziate auch als „schizophrene Mizellen“ bezeichnet. Je nach der relativen Lage der beiden Phasenübergänge, die sich durch Polymerkonzentration oder durch Salzzusatz einstellen lässt, läuft die Strukturinversion über ein molekular gelöstes oder über ein unlösliches Zwischenstadium ab. Der Polysulfobetain-Block bildet bei niedriger Temperatur Aggregate, die durch den gelösten poly(NIPMAM)-Block in Lösung gehalten werden. Dahingegen bildet der poly(NIPMAM)-Block bei hoher Temperatur Aggregate, welche ihrerseits durch den gelösten Polysulfobetain-Block in Lösung gehalten werden. Somit werden „schizophrene“ Aggregate in Wasser erzeugt, die fähig sind, reversibel ihr „Inneres“ nach „Außen“ und umgekehrt zu schalten durch Nutzen eines einfachen thermischen Impulses. KW - switchable block copolymer KW - polyzwitterion KW - polysulfobetaine KW - thermoresponsive polymers KW - schizophrenic behavior KW - LCST and UCST KW - electrolyte sensitivity KW - zweifach schaltbare Blockcopolymere KW - Polyzwitterion KW - Polysulfobetaine KW - thermoresponsive Polymere KW - schizophrenes Verhalten KW - LCST und UCST KW - Elektrolytempfindlichkeit Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-101372 ER -