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Morphology development and rheological properties of reactively compatibilized Polyamide 6 / High Density Polyethylene blends / Développement des morphologies et comportement rhéologique des mélanges Polyamide 6 / Polyethylene Haute Densité compatibilisés par voie réactiveÉpinat, Chloé 18 December 2014 (has links)
L'enjeu de ce travail est de comprendre les paramètres contrôlant les mécanismes de développement des morphologies et notamment la formation des nanodispersions pour des mélanges binaires de polyamides 6 de différentes masses molaires et de polyéthylène haute densité greffé anhydride maléique, mis en oeuvre par extrusion réactive. Le choix stratégique des matériaux a permis de balayer une large gamme de rapports de viscosité ainsi que différentes architectures de copolymères formés à l'interface. Les mécanismes de nature rhéologique ont été isolés méthodiquement des mécanismes dus à la réaction à l'interface en étudiant, d'une part, des mélanges non compatibilisés PA6/PEHD, puis l'effet de la réaction de compatibilisation seule en condition statique. Différents mécanismes de rupture de gouttes basés sur des instabilités capillaires sont proposés selon le rapport de viscosité. L'observation de microstructures ordonnées de copolymères aux interfaces en condition statique démontre la déstabilisation de l'interface fortement relié à la symétrie des copolymères formés. Les propriétés rhéologiques des mélanges sont étudiées ensuite. Les mécanismes de relaxation observés sont discutés, en particulier ceux liés aux interfaces et aux interactions entre nodules, en lien avec les morphologies des mélanges. Dans les mélanges compatibilisés, le comportement type gel ou solide-élastique (forte augmentation de l'élasticité aux basses fréquences), pour les mélanges concentrés, suggère la création d'un réseau percolant d'interactions entre nodules voisins. Enfin, un modèle performant de prédiction de la composition à l'inversion de phase à partir du comportement rhéologique est proposé / The aim of this work is to understand the parameters that control the morphology development mechanisms, and especially, the formation of nanodispersions. This study deals with binary blends of polyamide 6 of different molecular weights and maleic anhydride grafted high density polyethylene, processed by reactive extrusion. The strategic choice of blend components allowed to cover a wide range of viscosity ratio and various copolymer architectures formed at the interface. Mechanisms controlled by classical rheological laws were methodically isolated from mechanisms specific to the compatibilization reaction at the interface by studying, on the one hand, uncompatibilized PA6/HDPE blends, and on the other hand, the effect of the compatibilization reaction in static condition. Different drop break-up mechanisms based on capillary instabilities are proposed depending on viscosity ratios. The observation of ordered microphase separated copolymer domains at the interfaces in static condition attests of the spontaneous interface destabilization, strongly related to the copolymer asymmetry. Blends rheological properties are then studied. The different relaxation mechanisms obtained are discussed, especially those related to the interfaces and interactions between droplets, relatively to blends morphologies. In compatibilized blends, gel-like or solid-elastic behavior (strong elasticity increase at low frequencies) for concentrated blends, suggest the creation of a percolating network of interactions between neighboring droplets. Finally, an efficient model for predicting the phase inversion composition from the rheological behavior is proposed
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Développement d'un nouveau procédé de chemo-épitaxie pour l'alignement des copolymères à blocs / New chemoepitaxy process development for block copolymer alignementPaquet, Anne 06 June 2019 (has links)
Afin de répondre aux demandes constantes de l’industrie micro-électronique pour la réduction des tailles des dispositifs électroniques, de nouvelles techniques de lithographie sont mises au point. Une de ces techniques est l’auto-assemblage dirigé des copolymères à blocs (DSA). Cette technique consiste à utiliser la capacité des copolymères à blocs à s’auto-assembler en nanodomaines (cylindres ou lamelles) pour former des motifs de type contact ou ligne / espace. En l’absence de motifs directionnels, les copolymères à blocs ne possèdent pas d’ordre à longue distance, nécessaire pour toute application type CMOS. Ainsi, deux approches différentes de DSA sont utilisées: la grapho-épitaxie, qui génère une orientation par guidage physique, et la chemo-épitaxie, qui génère une orientation par affinité chimique. Cette dernière permet plus de flexibilité lors de la conception des masques de lithographie puisque les zones actives sont définies à postériori par l’approche « cut last », et est de fait la plus recherchée aujourd’hui pour aligner les copolymères à blocs. Toutefois, les procédés de chemo-épitaxie actuels ont montré leurs limitations pour l’utilisation de copolymères à blocs de haute résolution dit high , dont la période est inférieure à 20 nm, due aux limitations des outils de lithographie conventionnelle utilisés en production.Dans cette thèse, un nouveau procédé de chemo-épitaxie, nommé ACE (Arkema-CEA) spécialement conçu pour l’intégration de copolymères à blocs high est présenté. Dans ce procédé, les guides de chemo-épitaxie sont formés en combinant la lithographie standard et le procédé de lithographie par espaceur. Une sous-couche neutre, permettant l’orientation perpendiculaire du copolymère à blocs, est dans un premier temps déposée entre les espaceurs. Après le retrait des espaceurs, une étape de greffage sélectif a lieu pour obtenir un guide affine. Dans le procédé ACE, la taille finale du guide n’est plus directement définie par lithographie mais elle est plutôt déterminée par la taille de l’espaceur, obtenue en contrôlant l’épaisseur de dépôt. Cette technique permet de s’affranchir des contraintes de la lithographie au niveau des hautes résolutions.Afin de démontrer la faisabilité du procédé ACE, la thèse est divisée en deux axes de recherches. Le premier axe consiste à valider les points critiques du procédé, à savoir le greffage sélectif du guide directionnel entre les motifs formés par la sous-couche neutre et le retrait des espaceurs. Une étude approfondie sur les différentes sous-couches polymères disponibles et les effets des procédés sur celles-ci est réalisée. Le second axe s’intéresse à l’alignement du copolymère à blocs par le procédé ACE. Des fenêtres de procédé permettant d’étudier la stabilité et la reproductibilité du procédé sont obtenues en mesurant la défectivité du copolymère à blocs en fonction de la commensurabilité des motifs de lithographie. L’influence des différents paramètres (conditions de recuit et d’épaisseur du copolymère à blocs, hauteur et CD des espaceurs, …) est étudiée afin d’optimiser le procédé mis en place.Au vu des essais réalisés, le procédé mis en place est un procédé hybride chemo-grapho-épitaxie : la combinaison des guides physiques et chimiques permet l’alignement à longue distance des copolymères à blocs. L’absence de topographie ou la modification de l’affinité chimique du guide entraine une absence ou une modification de l’alignement des blocs. L’optimisation des paramètres permet l’alignement des copolymères à blocs sur de longues distances (plusieurs dizaines de micromètres carré), qui pourront permettre la définition de zone active par l’approche « cut last ». / In order to offer a solution to constant micro-electronics fab requirements in terms of lithography resolution, new lithography approaches are under study. One of this technic consist of using Block Copolymer capabilities to self-assembled in micro-structures, forming patterns structures like contact (cylinders) and line / space (lamellae). In the absence of any constraint, block copolymer do not own a long range order, useful for any CMOS-type application. Thereby two technics are used to obtain a block alignment: the grapho-epitaxy which align the block copolymer thanks to a physical guide, and the chemo-epitaxy, which align block copolymer thanks to a chemical affinity. Chemo-epitaxy, contrary to graph-epitaxy, offers space saving by aligning the blocs all over the studied field. Today, it is the most used technic. However, the current lithography requirements lead to the integration of high block copolymers whose period are below 20 nm. With this dimension, the current chemo-epitaxy processes are not adapted anymore, due to the resolution limit of the standard lithography tools defining the guides.This thesis aims to introduce a new chemo-epitaxy process flow, called Process ACE,by using LETI 300mm process capability and Arkema’s block copolymer advanced materials. In this new process, chemo-epitaxy guides are formed by combining standard lithography and established spacer patterning process. Spacer patterning technique is an option which, thanks to its aggressive dimensions, allows the integration of high block copolymers. A neutral underlayer, allowing perpendicular bloc copolymer orientation is located between the spacers. After the spacer removal, a selective grafting takes place to obtain an affine guide for one of the block. The final guide size corresponds to the one of the spacer earlier processed.In order to validate the process feasibility the thesis is divided in two parts. The first part investigates the critical process steps, that is to say the affinity guide selective grafting between the patterns form by the neutral underlayer and the spacers removal, by means of an in-depth polymer underlayer study and the process effects on these one’s. The second part focuses on block copolymer alignment with process ACE. Process windows validating the process stability and reproducibility are obtained by measuring block copolymer defectivity as a function of the lithography patterns commensurability. The different parameters effect (block copolymer baking, spacer height and width) is studied in order to optimise the process set up.On the basis of the testis undertaken, the process set up is a hybrid chemo-grapho-epitaxy process. It allows block copolymer long range order thanks to physical and chemical guides involved at the underlayer – block copolymer interface all by allowing a full space occupation of the available space.
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Řízené uvolňování léčiv z biodegradabilních hydrogelů. / Controlled Drug Release from Biodegradable Hydrogels.Oborná, Jana January 2018 (has links)
This dissertation is focused on the controlled release of drugs from a biodegradable amphiphilic hydrogel based on hydrophobic poly(lactic acid), poly(glycolic acid) and hydrophilic poly(ethylene glycol) (PLGA-PEG-PLGA, ABA) and its modification with itaconic anhydride (ITA). The resulting ,-itaconyl(PLGA-PEG-PLGA) copolymer is referred to as ITA/PLGA-PEG-PLGA/ITA or ITA/ABA/ITA. Itaconic acid provides reactive double bonds and a functional carboxyl group at the ends of the PLGA-PEG-PLGA copolymer chain, thereby rendering the modified ITA/ABA/ITA copolymer less hydrophobic and offering the possibility of forming a carrier for hydrophilic drug substances. These functional copolymers are thermosensitive and change in the external environment (e.g. temperature) causes a sol-gel phase transition due to the formation of micellar structure. The bioactive substances can thus be mixed with a copolymer which is in a low viscous phase (sol phase) and subsequently the mixture can be injected into patient's body at the target site where it forms a gel at 37 °C. This hydrogel becomes a drug depot, which gradually releases the active substance. Prediction of the substance’s release profile from the hydrogel is an effective tool to determine the frequency of administration, potentially enhancing efficacy, and assessment of side effects associated with dosing. The analgesic paracetamol and the sulfonamide antibiotic sulfathiazole were used as model drugs, representing hydrophilic and hydrophobic substances, respectively. The active substances had a significant effect on the resulting hydrogel stiffness. Type of solvent, incubation medium and nanohydroxyapatite also influenced on the gel stiffness and subsequent stability of the hydrogel-drug system. Controlled release of drugs took place in simulated conditions of the human body. Verification of Korsmeyer-Peppas (KP) drug-release model is also discussed in this thesis. The KP model was found suitable for simulating the release of sulfathiazole from ABA and ITA/ABA/ITA hydrogels. On the contrary, the performance of KP model was not suitable for describing the release of paracetamol from the ABA hydrogels. Therefore, a new regression model suitable for both buffered simulated media and water has been proposed. The proposed model fitted better the release of both sulfathiazole and paracetamol from composite material prepared from ABA hydrogel and nanohydroxyapatite.
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Optimalizace povrchových úprav polymerů pro mikroskopická pozorování / Optimizing of Polymer Surface Treatment for Microscopic ExaminationHorská, Pavlína January 2011 (has links)
Supramolecular structure of eight commercial types of iPP, its blends with poly(L-lactide) (PP-PLLA) and copolymers with ethylene-propylene rubber (PP-EPR) together with four types of polyethylene (LDPE, HDPE) was uncovered and observed in this work. The spherulitic structure of iPP and PE homopolymers and PP copolymers was uncovered by etching of six different solutions of mineral acids with KMnO4 and by dissolution in four selected solvents. The latter was found to be ineffective. The structure of PP-PLLA blends was uncovered only after recrystallization (the change of structure by annealing and cooling rate). The uncovered crystalline structure was observed directly by confocal laser scanning microscope (CLSM) and SEM. Crystallinity together with a size distribution of crystallites was determined by DSC. It was proved that spherulitic supramolecular structure was easy to uncover by chemical etching only for molded samples and for fracture surfaces of injected samples. The efficiency of etchants varied but, generally, the samples with high degree of crystallinity were etched earlier. The etchants containing nitric acid and high content of sulphuric acid uncovered fine details of shperulites with respect to mixtures containing orthophosporic acid. It was also observed that not only the etchant (especially with nitric acid) itself but also its vapors were effective. The structure was revealed later but the appearance was plastic (3D) and the structure was very fine. The supramolecular structure of PP-PLLA blends differed with amount of each component. The ethylene-rubber phase came forth with increasing time of etching while PP spherulites disappeared in PP-EPR samples. CLSM was shown to be very good tool for observing supramolecular structure of studied samples with respect to SEM, which was proved to be entirely unsuitable for polyolefines. DSC is recommended to be performe before uncovering supramolecular structure for basic information about proportion of amorphous/crystalline phase and size of crystallites.
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Studium vlastností polymery modifikovaných malt využívající skelný recyklát / Study of the Properties of Polymer-modified Mortars using Recycled GlassDořičáková, Michaela January 2017 (has links)
Master´s thesis deals with the study properties of polymer modified mortars using recycled glass and is divided into two parts, theoretical and practical. In the theoretical part has been expert search which deals with polymer modified mortars using recycled glass. On the basis of this information has been formulate practical part, which focused on the study properties of mortars depending on the time period and environment.
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Morphology Control of Copolymer Thin Films by NanoparticlesShagolsem, Lenin Singh 11 December 2013 (has links)
Diblock-Copolymers (DBCs), created by covalently joining two chemically distinct polymer blocks, spontaneously form various nanoscale morphologies such as lamellae, cylinders, spheres, etc. due to the chemical incompatibility of its constituent blocks. This effect is called microphase separation in the literature. Because of this self-organizing property DBCs find applications in many areas e.g. in creating selective membranes, and in polymer based modern electronic devices like organic photovoltaics where the internal morphology plays an important role in determining the performance of the device. Many such modern devices are based on thin film technologies and uses copolymer nanocomposites as it exhibits advantageous electrical, optical, and mechanical properties. Also, DBC can direct the spatial distribution of nanoparticles (NPs) in the polymer matrix via microphase separation. Generally, two types of NPs are distinguished with respect to their monomer affinity: selective NPs which prefer one component of DBC, and non-selective NPs which interact equally with both components of DBC. In this work, using molecular dynamics simulations and analytical calculations, we explore the effect of adding both types of NP in the copolymer matrix considering a thin film (or confined) geometry.
We consider a cylinder forming DBC melt confined by purely repulsive walls in slit geometry and study the behavior of the system upon adding non-selective NPs. Two models of non-selective interactions between the monomers and NPs are applied, i.e repulsive and weakly attractive interactions (athermal and thermal cases respectively). Spatial distribution of NPs in the copolymer matrix is sensitive to the NP-monomer interaction behavior. We focus on the thermal case and discuss, in particular, the following points: (1) role of diblock and polymer-wall interfaces, (2) spatial distribution of NPs, and (3) NP segregation and uptake behavior by the copolymer film. The uptake of NPs by the copolymer film in the thermal case displays a non-monotonic dependence on temperature which can be explained qualitatively using a mean-field model. In general, addition of non-selective NPs do not affect the copolymer morphology and the NPs are preferentially localized at the interface between microphase domains.
Morphological transitions are observed when adding selective NPs to the copolymer matrix. By varying the amount of selective NPs and diblock composition we systematically explore the various structures formed by the nanocomposites under confinement and constructed the corresponding phase diagram in diblock composition and NP concentration. We also discuss the NP induced orientation transition of lamellar structure and study the stability of lamellar phases formed by the nanocomposites.
To study the commensurability and wetting transition of horizontally oriented lamellar phase formed by the nanocomposites we have developed a mean field model based on the strong segregation theory. Our model predicts that it is possible to reduce the frustration in a film of fixed thickness by properly tuning the NP-monomer interaction strength. Furthermore, the model predicts a discontinuous transition between the non-wetted phase (where a dense NP layer is present in the polymer-substrate interface) and wetted phase (where the substrate is covered by polymers).
Finally, we extend our study to non-equilibrium where we apply a shear flow field to copolymer thin films. Here, we study the flow behavior, lamellae deformation and change of pair-wise interaction energy, and macroscopic response like kinetic friction coefficient and viscosity of the copolymer thin film with and without NPs. / Lösungen von Diblock-Copolymeren (DBC), welche durch die kovalente Bindung zweier chemisch unterschiedlicher linearer Polymerblöcke entstehen, können spontan mikroskopische Strukturen ausbilden, welche je nach dem Grad der chemischen Kompatibiliät der Blöcke beispielsweise lamellen-, zylinder- oder kugelartige Formen zeigen. Dieses Phänomen wird meist als Mikrophasenseparation bezeichnet. Aufgrund dieser selbstorganisierenden Eigenschaft finden DBCs Anwendungen in vielen Bereichen der Forschung und der Industrie. Beispielsweise zur Erzeugung selektiver Membranen oder in moderner polymerbasierter Elektronik, wie organischen Solarzellen, wo die innere Struktur eine wichtige Rolle spielt um die Leistungsfähigkeit zu erhöhen. Viele moderne Geräte basieren auf der Technologie dünner Schichten und nutzen Copolymer-Nanokomposite um elektrische, optische oder mechanische Eigenschaften zu verbessern.
In Folge der Mikrophasenseparation kann man mit Hilfe von DBC die räumliche Verteilung von Nanopartikeln (NP) in der Polymermatrix kontrollieren. Man unterscheidet im Allgemeinen zwischen zwei Arten von NP: selektive NP, welche eine der beiden Komponenten der DBC bevorzugen und nicht-selektive NP, welche mit beiden Komponenten gleichartig wechselwirken. In der vorliegenden Arbeit nutzen wir molekulardynamische Simulationen und analytische Rechnungen um den Eigenschaften zu studieren, welche eine Zugabe von selektiven und nicht-selektiven NP auf eine dünnschichtige Copolymermatrix hat.
Wir betrachten eine zylinderformende Schmelze aus DBC, welche in einem dünnen Film, zwischen zwei harten Wänden eingeschränkt ist, und untersuchen das Verhalten des Systems unter Zugabe nicht-selektiver NP. Zwei Modelle nicht-selektiver Wechselwirkungen werden angenommen: ausschließlich repulsive (athermische) Wechselwirkungen und schwach anziehende (thermische) Wechselwirkungen. Die räumliche Verteilung der NP ist abhängig von dem jeweiligen Wechselwirkungsverhalten. Wir konzentrieren uns hierbei auf den thermischen Fall und diskutieren speziell folgende Schwerpunkte: (1.) die Rolle der sich ausbildenden Grenzschichten, (2.) die räumliche Verteilung der NP und (3.) die Abscheidung der NP, sowie die Aufnahmefähigkeit derselben durch die Polymermatrix. Im thermische Fall zeigt die Aufnahme der NP durch die Copolymerschicht eine nicht-monotone Abhängigkeit von der Temperatur, was mit Hilfe eines Mean-Field Modells erklärt werden kann. Die Zugabe nicht-selektiver NP hat keinen Einfluss auf die Struktur der Copolymermatrix und die NP werden vorzugsweise an der Grenzschicht der jeweiligen Mikrophasen gefunden.
Im Gegensatz dazu kann man durch die Zugabe selektiver NP eine Strukturveränderung in der Copolymermatrix feststellen. Durch Veränderung der Menge der NP und der Zusammensetzung der DBC können wir systematisch unterschiedliche Strukturen des räumlich eingeschränkten Nanokomposits erzeugen und ein entsprechendes Phasendiagram bezüglich der NP Konzentration und der DBC Zusammensetzung erstellen. Wir untersuchen auch die durch NP induzierte Orientierung der Lamellenstruktur und analysieren ihre Stabilität.
Um den sogenannten Kommensurabilitäts- und Benetzungsübergang in horizontal orientierten Lamellenstrukturen zu untersuchen haben wir ein Mean-Field Modell entwickelt, welches auf der Annahme der 'starken Segregation' basiert. Unser Modell macht die Vorhersage, dass es möglich ist die Frustration in einem Kompositfilm zu reduzieren, indem man die NP-Monomer-Wechselwirkung entsprechend anpasst. Zusätzlich sagt das Modell einen diskontinuierlichen Übergang zwischen der unbenetzten Phase (Ausbildung einer dichten NP Konzentration an der Polymer-Substrat Grenzschicht) und der benetzten Phase (das Substrat ist ausschließlich vom Polymerkomposit bedeckt) voraus.
Abschließend weiten wir unsere Untersuchungen auf Nicht-Gleichgewichtszustände aus und induzieren durch Scherung der Substratwände einen Strömungprofil im Kompositfilm. Dabei analysieren wir das Strömungsverhalten, die Lamellendeformation und die Änderung der paarweisen Wechselwirkungsenergie. Wir untersuchen auch makroskopische Größen, wie den kinetischen Reibungskoeffizienten und die Viskosität, je in An- und Abwesenheit von Nanopartikeln.
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Synthesis of Functional Block Copolymers for use in Nano-hybridsIbrahim, Saber 22 March 2011 (has links)
Polystyrene block polyethyleneimine (PS-b-PEI) copolymer prepared by combining PS and poly(2-methyl-2-oxazoline) (PMeOx) segments together through two strategies. Furthermore, PMeOx block was hydrolysis to produce PEI block which linked with PS block.
Macroinitiator route is one of these two ways to prepare PS-b-PEI copolymer. Polystyrene macroinitiator or poly(2-methyl-2-oxazoline) macroinitiator prepared through Nitroxide Mediate Radical Polymerization (NMRP) or Cationic Ring Opening Polymerization (CROP) respectively. Each macroinitiator has active initiated terminal group toward another block monomer. Second strategy based on coupling of PS segment with PMeOx block through “click” coupling chemistry. Polystyrene modified with terminal azide moiety are combined with PMeOx functionalized with alkyne group via 1,3 dipolar cycloaddition reaction “click reaction”.
PS-b-PMeOx was hydrolysis in alkaline medium to produce amphiphilic PS-b-PEI copolymer. A set of block copolymer with different block ratios was prepared and investigated to select suitable block copolymer for further applications. Stichiometric PS-b-PEI copolymer selected to stabilize gold nanoparticle (Au NPs) in polymer matrix. PEI segment work as reducing and stabilizing agent of gold precursor in aqueous solution. Various concentrations of gold precursor were loaded and its effect on UVVIS absorbance, particle size and particle distribution studied. In addition, reduction efficiency of PEI block was determined from XPS measurements. The thickness of Au NPs/PS-b-PEI thin film was determined with a novel model for composite system. On the other hand, Gallium nitride quantum dots (GaN QDs) stabilized in PS-b-PEI copolymer after annealing. Our amphiphilic block copolymer exhibit nice thermal stability under annealing conditions. GaN QDs prepared in narrow nano-size with fine particle distribution. Blue ray was observed as an indication to emission activity of GaN crystal. Over all, PS-b-PEI copolymer synthesized through macroinitiator and click coupling methods. It was successfully stabilized Au NPs and GaN QDs in polymer matrix with controlled particle size which can be post applied in tremendous industrial and researcher fields.
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Synthesis and Characterization of Poly(siloxane imide) Block Copolymers and End-Functional Polyimides for Interphase ApplicationsBowens, Andrea Demetrius 11 September 1999 (has links)
End-functional poly(ether amic acid)s and poly(siloxane imide) multiblock copolymers, comprised of 2,2'-Bis[4-(3,4-dicarboxyphenoxy)phenyl]propane dianhydride (BPADA) / meta-phenylene diamine (MPDA) and hexafluoroisopropylidene-2-bis(phthalic acid anhydride) (6FDA) / meta-phenylene diamine (MPDA) polyimide segments, have been prepared and characterized to explore possibilities for controlling interface properties. Incorporation of polydimethylsiloxane (PDMS) components into polyimide backbone structures can yield advantageous properties such as low energy surfaces and low stress interfaces.
End-functional BPDA/MPDA poly(amic acid) salts and poly(siloxane amic acid) salts were prepared in methanolic or aqueous tripropylamine solutions. The polymeric salts formed stable water solutions (or dispersions) and imidized in less than 10 minutes at 260°C. The water solubility and rapid imidization times are ideal for on-line processing. Thus, these materials can be used as sizing and interface toughening agents for fiber reinforced composite manufacturing. Epoxy-polyimide networks prepared from the amine functionalized polyimide with DER 331 epoxy resin and diamino diphenylsulfone showed microphase separation (100-300 nm inclusions) by transmission electron microscopy. Slight toughening of the cured epoxy with 9 weight % imide was observed with the imide as the included phase. Epoxy bilayer films of polyimide (amine end-functional and commercial Ultem™) and poly(siloxane imide) multiblock copolymers were prepared to evaluate the polymer-matrix interphase region. Atomic force microscopy (AFM) analysis of the bilayer films showed diffusion at the interphase for the bilayers prepared with the polyimides and the BPADA/MPDA block copolymers containing polyimide continuous phases.
Poly(siloxane imide) multiblock copolymers comprised of 6FDA/MPDA polyimide structures are ideal candidates for controlling interfacial properties between silicon substrates layered with thin films for microelectronic applications. These high Tg materials offer an approach for obtaining reduced moisture absorption and low stress interfaces. Evaluation of the refractive indices of the block copolymer films showed a decrease with increasing siloxane content thus suggesting the possibility of lower dielectric constants. The polymer-metal interfacial properties were investigated for films cast on titanium and tantalum substrates. The results suggested a correlation between the surface hydroxyl concentration of the metal oxide layer with the interfacial properties of the cast poly(siloxane imide) block copolymer films. The surface hydroxyls were thought to hydrogen bond with the PDMS component of the block copolymer. Since the titanium substrate has a higher surface hydroxyl concentration than the tantalum, higher silicon concentrations were observed.
The melt imidized end-functional polyimides and poly(siloxane imide) block copolymers produced thermally stable materials with 5% weight loss temperatures well above 400°C. However, the block copolymers showed slightly lower 5% weight loss temperatures as a function of siloxane content with a significant increase in char formation. Correlation of the upper glass transition temperatures with the imide segment length was consistent with findings noted for other phase separated randomly segmented block copolymers.
Incorporating PDMS into the polyimide backbone structure has an effect on the bulk and surface properties. The bulk properties of the poly(siloxane imide) block copolymers were characterized using TEM. The morphologies were consistent with classical block copolymers. Surface properties of the block copolymer films as a function of PDMS content were investigated using angular dependent X-ray photoelectron spectroscopy at take-off angles of 15, 30, and 45°. Surface enrichment of PDMS content over that of the bulk was observed at all three sampling depths. Further evidence of this siloxane enrichment in the surface was demonstrated with water contact angle analyses. With as little as 5 weight % PDMS (<Mn> = 5000 g/mol) in the block copolymer there was over a 25% increase in the water contact angle over the polyimide control. The surface topography was influenced by the degree of phase separation and was characterized using AFM. The roughness factor was used to represent the data. It was found that the surface roughness increased with increasing PDMS content. / Ph. D.
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Élaboration d’agents de transfert fonctionnalisés, précurseurs de copolymères supramoléculaires par liaisons hydrogène et interactions hôte/invité / Design of functionalized chain transfer agents, precursors to supramolecular copolymers based on H-bonding and host/guest inclusionBertrand, Arthur 20 December 2011 (has links)
Au cours de la dernière décennie, quelques (rares) exemples de copolymères à blocs présentant des liens supramoléculaires entre les blocs constitutifs ont été décrits. En raison du caractère réversible de l’association des blocs macromoléculaires, de tels polymères sont d’un grand intérêt pour le développement de matériaux nanostructurés, ayant des propriétés auto-cicatrisantes ou à processabilité améliorée. L’objectif principal de cette thèse est d’élaborer de nouvelles architectures supramoléculaires, en combinant la polymérisation RAFT et l’association spécifique par liaisons H des groupements thymine et diaminopyridine. La stratégie employée a consisté dans un premier temps en la synthèse d’agents de transfert et d’un amorceur radicalaire fonctionnalisés par des unités complémentaires thymine et diaminopyridine. Ces précurseurs ont permis de générer, par polymérisation RAFT, des polymères α- ou α,ω-fonctionnalisés de manière quantitative par ces motifs à liaisons H. L’auto-assemblage des blocs polymères ainsi obtenus a été mis en évidence par RMN 1H, AFM et par des mesures rhéologiques. Cette démarche a été adaptée dans un second temps à l’élaboration de copolymères greffés supramoléculaires hydrophiles, basés sur le complexe d’inclusion β-cyclodextrine/adamantane. / Over the past decade, some (rare) examples of block copolymers with supramolecular links between the building blocks have been described. Because the association between macromolecular blocks is a reversible process, such polymers are of great interest in the field of nanostructured materials, self-healing materials, or processing aid. The main goal of this work is to develop new supramolecular architectures, by a combination of RAFT polymerization and H-bonding. In a first step, several chain transfer agents and a radical initiator possessing complementary thymine or diaminopyridine H-bonding moeties were synthesized. These precursors were used to generate a panel of polymers α- or α,ω-functionalized with these H-bonding stickers in a quantitative manner. The self-assembly of the resulting polymer blocks was highlighted by 1H NMR, AFM and rheological measurements. This approach was subsequently adapted to the development of hydrophilic supramolecular comb-shaped polymers, based on the β-cyclodextrin/adamantane host/guest complexation.
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Synthesis and properties of polyesters based on poly(butylene succinate), a renewable polymer / Synthèse et propriétés des polyesters à base de poly (butylène succinate), un polymère renouvelablesJacquel, Nicolas 15 December 2011 (has links)
Les polymères issus de la biomasse génèrent depuis quelques années un engouement certain puisqu’ils apparaissent comme de potentiels substituts aux polymères issus de l’industrie pétrolière. Parmi ces monomères récemment développés, l’acide succinique bio-sourcé a reçu une attention particulière notamment pour des applications dans le domaine des polyesters tels que le poly(butylène succinate). La présente thèse décrit la synthèse de ce polymère par estérification directe de l’acide succinique et du 1,4-butanediol dans un réacteur pilote de 7.5 L. Les principaux paramètres du procédé tels que l’excès de diol, la température de trans-estérification ainsi que la pureté de l’acide succinique ont été étudiés. Une attention particulière a été portée sur le choix du catalyseur (son type, la quantité utilisée …) afin d’observer son influence sur le procédé ainsi que sur la stabilité du polymère final. Puis différentes stratégies de modification du poly(butylene succinate) ont été testées pour améliorer à la fois sa mise en forme par extrusion gonflage et les propriétés des films obtenus. Dans ce but l’introduction d’agents de branchements, de silices nanométriques ainsi que des comonomères rigides a été étudiée. / Polymers issued from biomass present a growing interest, since they seem to be a suitable alternative to conventional petrochemical polymers. Among the newly developed monomers, bio-based succinic acid received a particular attention for its application in the synthesis of aliphatic polyesters such as poly(butylene succinate). The present thesis reports the synthesis of this polymer via the direct esterification of succinic acid and 1,4-butanediol in a 7.5 L pilote scale reactor. Main process parameters such as the diol exces, the trans-esterification temperature as well as the purity of succinic acid have been studied. In addition a special attention was taken to highlight the influence of the catalyst (its type, quantity ...) on the synthesis and on the stability of the resulting polymer. Then several strategies of modification of poly(butylene succinate) have been studied to improve the processability of the polymer via film extrusion blowing and to enhance the properties of polymer films. To that end the introduction of branching agents, silica nanofillers as well as rigid comonomers have been studied.
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