TY - JOUR A1 - Yuan, Jiayin A1 - ten Brummelhuis, Niels A1 - Junginger, Mathias A1 - Xie, Zailai A1 - Lu, Yan A1 - Taubert, Andreas A1 - Schlaad, Helmut T1 - Diversified applications of chemically modified 1,2-Polybutadiene JF - Macromolecular rapid communications N2 - Commercially available 1,2-PB was transformed into a well-defined reactive intermediate by quantitative bromination. The brominated polymer was used as a polyfunctional macroinitiator for the cationic ring-opening polymerization of 2-ethyl-2-oxazoline to yield a water-soluble brush polymer. Nucleophilic substitution of bromide by 1-methyl imidazole resulted in the formation of polyelectrolyte copolymers consisting of mixed units of imidazolium, bromo, and double bond. These copolymers, which were soluble in water without forming aggregates, were used as stabilizers in the heterophase polymerization of styrene and were also studied for their ionic conducting properties. KW - emulsion polymerization KW - polybutadiene KW - polyelectrolytes KW - polymer modification KW - ring-opening polymerization Y1 - 2011 U6 - https://doi.org/10.1002/marc.201100254 SN - 1022-1336 VL - 32 IS - 15 SP - 1157 EP - 1162 PB - Wiley-Blackwell CY - Malden ER - TY - JOUR A1 - Secker, Christian A1 - Brosnan, Sarah M. A1 - Luxenhofer, Robert A1 - Schlaad, Helmut T1 - Poly(alpha-Peptoid)s Revisited: Synthesis, Properties, and Use as Biomaterial JF - Macromolecular bioscience N2 - Polypeptoids have been of great interest in the polymer science community since the early half of the last century; however, they had been basically forgotten materials until the last decades in which they have enjoyed an exciting revival. In this mini-review, we focus on the recent developments in polypeptoid chemistry, with particular focus on polymers synthesized by the ring-opening polymerization (ROP) of amino acid N-carboxyanhydrides (NCAs). Specifically, we will review traditional monomer synthesis (such as Leuchs, Katchalski, and Kricheldorf) and recent advances in polymerization methods to yield both linear, cyclic, and functional polymers, solution and bulk thermal properties, and preliminary results on the use of polypeptoids as biomaterials (i.e immunogenicity, biodistribution, degradability, and drug delivery). KW - amino acid N-carboxyanhydride (NCA) KW - biomaterials KW - peptides KW - properties KW - ring-opening polymerization Y1 - 2015 U6 - https://doi.org/10.1002/mabi.201500023 SN - 1616-5187 SN - 1616-5195 VL - 15 IS - 7 SP - 881 EP - 891 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Peng, Xingzhou A1 - Behl, Marc A1 - Zhang, Pengfei A1 - Mazurek-Budzynska, Magdalena A1 - Feng, Yakai A1 - Lendlein, Andreas T1 - Synthesis of Well-Defined Dihydroxy Telechelics by (Co)polymerization of Morpholine-2,5-Diones Catalyzed by Sn(IV) Alkoxide JF - Macromolecular bioscience N2 - Well-defined dihydroxy telechelic oligodepsipeptides (oDPs), which have a high application potential as building blocks for scaffold materials for tissue engineering applications or particulate carrier systems for drug delivery applications are synthesized by ring-opening polymerization (ROP) of morpholine-2,5-diones (MDs) catalyzed by 1,1,6,6-tetra-n-butyl-1,6-distanna-2,5,7,10-tetraoxacyclodecane (Sn(IV) alkoxide). In contrast to ROP catalyzed by Sn(Oct)(2), the usage of Sn(IV) alkoxide leads to oDPs, with less side products and well-defined end groups, which is crucial for potential pharmaceutical applications. A slightly faster reaction of the ROP catalyzed by Sn(IV) alkoxide compared to the ROP initiated by Sn(Oct)(2)/EG is found. Copolymerization of different MDs resulted in amorphous copolymers with T(g)s between 44 and 54 degrees C depending on the molar comonomer ratios in the range from 25% to 75%. Based on the well-defined telechelic character of the Sn(IV) alkoxide synthesized oDPs as determined by matrix-assisted laser desorption/ionization time of flight measurements, they resemble interesting building blocks for subsequent postfunctionalization or multifunctional materials based on multiblock copolymer systems whereas the amorphous oDP-based copolymers are interesting building blocks for matrices of drug delivery systems. KW - oligodepsipeptides KW - ring-opening polymerization KW - Sn(IV) alkoxide KW - telechelics KW - tin(II) 2-ethylhexanoate Y1 - 2018 U6 - https://doi.org/10.1002/mabi.201800257 SN - 1616-5187 SN - 1616-5195 VL - 18 IS - 12 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Naolou, Toufik A1 - Lendlein, Andreas A1 - Neffe, Axel T. T1 - Amides as non-polymerizable catalytic adjuncts enable the ring-opening polymerization of lactide with ferrous acetate under mild conditions JF - Frontiers in Chemistry N2 - Sn-based catalysts are effective in the ring-opening polymerization (ROP) but are toxic. Fe(OAc)(2) used as an alternative catalyst is suitable for the ROP of lactide only at higher temperatures (>170 degrees C), associated with racemization. In the ROP of ester and amide group containing morpholinediones with Fe(OAc)(2) to polydepsipeptides at 135 degrees C, ester bonds were selectively opened. Here, it was hypothesized that ROP of lactones is possible with Fe(OAc)(2) when amides are present in the reactions mixture as Fe-ligands could increase the solubility and activity of the metal catalytic center. The ROP of lactide in the melt with Fe(OAc)(2) is possible at temperatures as low as 105 degrees C, in the presence of N-ethylacetamide or N-rnethylbenzamide as non-polymerizable catalytic adjuncts (NPCA), with high conversion (up to 99 mol%) and yield (up to 88 mol%). Polydispersities of polylactide decreased with decreasing reaction temperature to <= 1.1. NMR as well as polarimetric studies showed that no racemization occurred at reaction temperatures <= 145 degrees C. A kinetic study demonstrated a living chain-growth mechanism. MALDI analysis revealed that no side reactions (e.g., cyclization) occurred, though transesterification took place. KW - ring-opening polymerization KW - polyester KW - catalyst KW - iron KW - amide ligand Y1 - 2019 U6 - https://doi.org/10.3389/fchem.2019.00346 SN - 2296-2646 VL - 7 PB - Frontiers Research Foundation CY - Lausanne ER - TY - GEN A1 - Ermeydan, Mahmut Ali A1 - Cabane, Etienne A1 - Hass, Philipp A1 - Koetz, Joachim A1 - Burgert, Ingo T1 - Fully biodegradable modification of wood for improvement of dimensional stability and water absorption properties by poly(ε-caprolactone) grafting into the cell walls N2 - Materials derived from renewable resources are highly desirable in view of more sustainable manufacturing. Among the available natural materials, wood is one of the key candidates, because of its excellent mechanical properties. However, wood and wood-based materials in engineering applications suffer from various restraints, such as dimensional instability upon humidity changes. Several wood modification treatments increase water repellence, but the insertion of hydrophobic polymers can result in a composite material which cannot be considered as renewable anymore. In this study, we report on the grafting of the fully biodegradable poly(ε-caprolactone) (PCL) inside the wood cell walls by Sn(Oct)2 catalysed ring-opening polymerization (ROP). The presence of polyester chains within the wood cell wall structure is monitored by confocal Raman imaging and spectroscopy as well as scanning electron microscopy. Physical tests reveal that the modified wood is more hydrophobic due to the bulking of the cell wall structure with the polyester chains, which results in a novel fully biodegradable wood material with improved dimensional stability. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 270 KW - ring-opening polymerization KW - confocal raman microscopy KW - epsilon-caprolactone KW - mechanical-properties KW - structural-characterization KW - stannous octoate KW - copolymers KW - degradation KW - composites KW - cellulose Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-97265 SP - 3313 EP - 3321 ER - TY - GEN A1 - Doriti, Afroditi A1 - Brosnan, Sarah M. A1 - Weidner, Steffen M. A1 - Schlaad, Helmut T1 - Synthesis of polysarcosine from air and moisture stable N-phenoxycarbonyl-N-methylglycine assisted by tertiary amine base N2 - Polysarcosine (Mn = 3650–20 000 g mol−1, Đ ∼ 1.1) was synthesized from the air and moisture stable N-phenoxycarbonyl-N-methylglycine. Polymerization was achieved by in situ transformation of the urethane precursor into the corresponding N-methylglycine-N-carboxyanhydride, when in the presence of a non-nucleophilic tertiary amine base and a primary amine initiator. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 255 KW - acids KW - activated urethane derivatives KW - carboxyanhydrides KW - copolymers KW - phosgene-free synthesis KW - polypeptides KW - ring-opening polymerization Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-95852 SP - 3067 EP - 3070 ER - TY - JOUR A1 - Doriti, Afroditi A1 - Brosnan, Sarah M. A1 - Weidner, Steffen M. A1 - Schlaad, Helmut T1 - Synthesis of polysarcosine from air and moisture stable N-phenoxycarbonyl-N-methylglycine assisted by tertiary amine base JF - Polymer Chemistry N2 - Polysarcosine (Mn = 3650–20 000 g mol−1, Đ ∼ 1.1) was synthesized from the air and moisture stable N-phenoxycarbonyl-N-methylglycine. Polymerization was achieved by in situ transformation of the urethane precursor into the corresponding N-methylglycine-N-carboxyanhydride, when in the presence of a non-nucleophilic tertiary amine base and a primary amine initiator. KW - ring-opening polymerization KW - activated urethane derivatives KW - phosgene-free synthesis KW - carboxyanhydrides KW - polypeptides KW - acids KW - copolymers Y1 - 2016 U6 - https://doi.org/10.1039/C6PY00221H SN - 1759-9954 SN - 1759-9962 VL - 7 SP - 3067 EP - 3070 PB - RSC Publ. CY - Cambridge ER - TY - JOUR A1 - Debsharma, Tapas A1 - Behrendt, Felix Nicolas A1 - Laschewsky, Andre A1 - Schlaad, Helmut T1 - Ring-opening metathesis polymerization of biomass-derived levoglucosenol JF - Angewandte Chemie : a journal of the Gesellschaft Deutscher Chemiker N2 - The readily available cellulose-derived bicyclic compound levoglucosenol was polymerized through ring-opening metathesis polymerization (ROMP) to yield polylevoglucosenol as a novel type of biomass-derived thermoplastic polyacetal, which, unlike polysaccharides, contains cyclic as well as linear segments in its main chain. High-molar-mass polyacetals with apparent weight-average molar masses of up to 100kgmol(-1) and dispersities of approximately 2 were produced despite the non-living/controlled character of the polymerization due to irreversible deactivation or termination of the catalyst/active chain ends. The resulting highly functionalized polyacetals are glassy in bulk with a glass transition temperature of around 100 degrees C. In analogy to polysaccharides, polylevoglucosenol degrades slowly in an acidic environment. KW - degradable polymers KW - metathesis KW - ring-opening polymerization KW - sustainable chemistry KW - thermoplastics Y1 - 2019 U6 - https://doi.org/10.1002/anie.201814501 SN - 1433-7851 SN - 1521-3773 VL - 58 IS - 20 SP - 6718 EP - 6721 PB - Wiley-VCH CY - Weinheim ER - TY - THES A1 - Debsharma, Tapas T1 - Cellulose derived polymers T1 - Polymere aus Cellulose BT - synthesis of functional and degradable polymers from cellulose N2 - Plastics, such as polyethylene, polypropylene, and polyethylene terephthalate are part of our everyday lives in the form of packaging, household goods, electrical insulation, etc. These polymers are non-degradable and create many environmental problems and public health concerns. Additionally, these polymers are produced from finite fossils resources. With the continuous utilization of these limited resources, it is important to look towards renewable sources along with biodegradation of the produced polymers, ideally. Although many bio-based polymers are known, such as polylactic acid, polybutylene succinate adipate or polybutylene succinate, none have yet shown the promise of replacing conventional polymers like polyethylene, polypropylene and polyethylene terephthalate. Cellulose is one of the most abundant renewable resources produced in nature. It can be transformed into various small molecules, such as sugars, furans, and levoglucosenone. The aim of this research is to use the cellulose derived molecules for the synthesis of polymers. Acid-treated cellulose was subjected to thermal pyrolysis to obtain levoglucosenone, which was reduced to levoglucosenol. Levoglucosenol was polymerized, for the first time, by ring-opening metathesis polymerization (ROMP) yielding high molar mass polymers of up to ~150 kg/mol. The poly(levoglucosenol) is thermally stable up to ~220 ℃, amorphous, and is exhibiting a relatively high glass transition temperature of ~100 ℃. The poly(levoglucosenol) can be converted to a transparent film, resembling common plastic, and was found to degrade in a moist acidic environment. This means that poly(levoglucosenol) may find its use as an alternative to conventional plastic, for instance, polystyrene. Levoglucosenol was also converted into levoglucosenyl methyl ether, which was polymerized by cationic ring-opening metathesis polymerization (CROP). Polymers were obtained with molar masses up to ~36 kg/mol. These polymers are thermally stable up to ~220 ℃ and are semi-crystalline thermoplastics, having a glass transition temperature of ~35 ℃ and melting transition of 70-100 ℃. Additionally, the polymers underwent cross-linking, hydrogenation and thiol-ene click chemistry. N2 - Kunststoffe wie Polyethylen, Polypropylen und Polyethylenterephthalat sind ein großer Bestandteil unseres Alltags und finden Verwendung unter anderem als Verpackungsmaterialien, Haushaltswaren und Elektroisolierungen. Diese Polymere werden aus fossilen Ressourcen hergestellt, sind nicht abbaubar und verursachen nicht nur viele Umweltprobleme sondern können auch zu Gesundheitsschäden führen. Aufgrund dessen muss die Verwendung von erneuerbaren Ressourcen geachtet werden, wobei die hergestellten Polymere im Idealfall komplett biologisch abbaubar sind. Obwohl viele biobasierte Polymere, wie Polymilchsäure, Polybutylensuccinatadipat oder Polybutylensuccinat, bekannt sind, hat noch keines das Potential gezeigt, herkömmliche Polymere zu ersetzen. Cellulose ist einer der am häufigsten in der Natur produzierten nachwachsenden Rohstoffe und kann in verschiedene kleine organische Moleküle wie Zucker (Saccharide), Furan und auch Levoglucosenon umgewandelt werden. Ziel dieser Arbeit ist die Verwendung von Levoglucosenon als Monomer für die Synthese von Polymeren. Säurebehandelte Cellulose wurde einer thermischen Pyrolyse unterzogen, um Levoglucosenon zu erhalten, das dann weiter zu Levoglucosenol reduziert wurde. Das Levoglucosenol wurde zum ersten Mal erfolgreich über eine Ringöffnungsmetathese-Polymerisation (ROMP) polymerisiert. Die Molmassen der hergestellten Polymere erreichten Werte von bis zu ~150 kg/mol. Die thermische Analyse von Poly(levoglucosenol) zeigt, dass es bis zu einer Temperatur von ~220 ℃ stabil ist, eine Glasübergangstemperatur bei ~100 ℃ hat und ein amorphes Polymer ist. Weiterhin kann das Poly(levoglucosenol) in feuchter saurer Umgebung in kurzer Zeit abgebaut werden. Aufgrund dieser Eigenschaften kann Poly(levoglucosenol) als Alternative zu konventionellem Kunststoff, wie z.B. Polystyrol, eingesetzt werden kann. Levoglucosenol wurde weiter in Levoglucosenylmethylether umgewandelt. Levoglucosenylmethylether kann mit kationischer Ringöffnungs-Polymerisation (CROP) polymerisiert werden. Es wurden Polymere mit Molmassen von bis zu ~36 kg/mol hergestellt. Die Polymere weisen eine thermische Stabilität bis zu einer Temperatur von ~220 °C auf. Es handelt sich bei den hergestellten Poly(levoglucosenylmethylethern) um teilkristalline Thermoplaste, deren Glasüberganstemperatur bei ~35 °C und der Schmelzbereich bei 70-100 °C liegt. Die Doppelbindungen des Levoglucosenylmethylethers wurden genutzt um das Polymer zu vernetzen und zu funktionalisieren. KW - biomass valorization KW - levoglucosenol KW - ring-opening polymerization KW - degradable polymer KW - sustainable chemistry KW - Biomasseverwertung KW - Levoglucosenol KW - ringöffnende Polymerisation KW - abbaubares Polymer KW - nachhaltige Chemie Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-441312 ER - TY - JOUR A1 - Behrendt, Felix Nicolas A1 - Schlaad, Helmut T1 - Entropy-Driven Ring-Opening Disulfide Metathesis Polymerization for the Synthesis of Functional Poly(disulfide)s JF - Macromolecular rapid communications N2 - Metal-free entropy-driven disulfide metathesis polymerization of unsaturated L-cystine based macrocycles produces high-molar-mass heterofunctional poly(disulfide)s, i.e., poly(ester-disulfide-alkene) and poly(amide-disulfide-alkene); M-w(app) = 44-60 kDa, (sic) > 1.7. The polymerization is fast and reaches equilibrium within 1-5 minutes (monomer conversion 70-90%) in polar aprotic solvents such as N,N-dimethylacetamide, dimethylsulfoxide, or y-valerolactone. Thiol-terminated polymers are stable in bulk or when dissolved in weakly polar solvents, but rapidly depolymerize in dilute polar solution. KW - disulfide KW - macrocycles KW - metathesis KW - ring-opening polymerization Y1 - 2018 U6 - https://doi.org/10.1002/marc.201700735 SN - 1022-1336 SN - 1521-3927 VL - 39 IS - 6 PB - Wiley-VCH CY - Weinheim ER - TY - THES A1 - Behrendt, Felix Nicolas T1 - New bio-based polymers T1 - Neue biobasierte Polymere BT - synthesis and polymerization of cystine-based macrocycles BT - Synthese und Polymerisation von cystinbasierten Makrozyklen N2 - Redox-responsive polymers, such as poly(disulfide)s, are a versatile class of polymers with potential applications including gene- and drug-carrier systems. Their degradability under reductive conditions allows for a controlled response to the different redox states that are present throughout the body. Poly(disulfide)s are typically synthesized by step growth polymerizations. Step growth polymerizations, however, may suffer from low conversions and therefore low molar masses, limiting potential applications. The purpose of this thesis was therefore to find and investigate new synthetic routes towards the synthesis of amino acid-based poly(disulfide)s. The different routes in this thesis include entropy-driven ring opening polymerizations of novel macrocyclic monomers, derived from cystine derivatives. These monomers were obtained with overall yields of up to 77% and were analyzed by mass spectrometry as well as by 1D and 2D NMR spectroscopy. The kinetics of the entropy-driven ring-opening metathesis polymerization (ED-ROMP) were thoroughly investigated in dependence of temperature, monomer concentration, and catalyst concentration. The polymerization was optimized to yield poly(disulfide)s with weight average molar masses of up to 80 kDa and conversions of ~80%, at the thermodynamic equilibrium. Additionally, an alternative metal free polymerization, namely the entropy-driven ring-opening disulfide metathesis polymerization (ED-RODiMP) was established for the polymerization of the macrocyclic monomers. The effect of different solvents, concentrations and catalyst loadings on the polymerization process and its kinetics were studied. Polymers with very high weight average molar masses of up to 177 kDa were obtained. Moreover, various post-polymerization reactions were successfully performed. This work provides the first example of the homopolymerization of endo-cyclic disulfides by ED-ROMP and the first substantial study into the kinetics of the ED-RODiMP process. N2 - Redoxresponsive Polymere, wie etwa Polydisulfide, sind eine vielseitige Klasse von Polymeren, die unter anderem als Gen- und Wirkstoffträgersysteme eingesetzt werden können. Ihre Abbaubarkeit unter reduktiven Bedingungen ermöglicht eine kontrollierte Reaktion auf die verschiedenen Redoxzustände im Körper. Polydisulfide werden jedoch häufig durch Stufenwachstums-polymerisationen synthetisiert. Diese führen oft zu niedrigen Umsätzen und daher zu niedrigen molaren Massen. Das Ziel dieser Arbeit war daher neue Synthesewege für aminosäurebasierte Polydisulfide zu finden und zu untersuchen. Diese Wege beinhalteten entropiegetriebene ringöffnende Polymerisationen von neuen makrozyklischen Monomeren, auf der Basis von Cystin-Derivaten. Diese Monomere konnten mit einer Gesamtausbeute von bis zu 77% synthetisiert werden und wurden mit Massenspektrometrie sowie mit 1D- und 2D-NMR-Spektroskopie analysiert. Die Kinetik der entropiegetriebenen ringöffnenden Metathese Polymerisation (ED-ROMP) wurde im Hinblick auf Temperatur, Monomerkonzentration und Katalysatormenge sorgfältig untersucht. Durch Optimierungen konnten Polydisulfide mit gewichtsmittleren Molmassen von bis zu 80 kDa und Umsätzen von ~80%, im thermodynamischen Gleichgewicht synthetisiert werden. Zusätzlich wurde eine alternative metallfreie Polymerisation, die entropiegetriebene ringöffnende Disulfidmetathese Polymerisation (ED-RODiMP), für die Polymerisation der makrozyklischen Monomere etabliert. Die Auswirkungen verschiedener Lösungsmittel, Konzentrationen und Katalysatorkonzentrationen auf die Kinetik dieses Polymerisationsprozesses wurden untersucht. Hierdurch wurden Polymere mit sehr hohen gewichtsmittleren Molmassen von bis zu 177 kDa erhalten. Darüber hinaus wurden verschiedene Postpolymerisationsreaktionen erfolgreich durchgeführt. Diese Arbeit liefert das erste Beispiel für die Homopolymerisation endo-zyklischer Disulfide durch ROMP und eine erste substanzielle Studie der Kinetik des ED-RODiMP-Prozesses. KW - polymers KW - ADMET KW - ROMP KW - disulfide KW - macrocycles KW - ring-opening polymerization KW - amino acids KW - Polymere KW - ADMET KW - ROMP KW - Disulfide KW - Makrozyklen KW - ringöffnende Polymerisation KW - Aminosäuren Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-418316 ER -