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Water at α-alumina surfaces
(2018)
The (0001) surface of α-Al₂O₃ is the most stable surface cut under UHV conditions and was studied by many groups both theoretically and experimentally. Reaction barriers computed with GGA functionals are known to be underestimated. Based on an example reaction at the (0001) surface, this work seeks to improve this rate by applying a hybrid functional method and perturbation theory (LMP2) with an atomic orbital basis, rather than a plane wave basis. In addition to activation barriers, we calculate the stability and vibrational frequencies of water on the surface. Adsorption energies were compared to PW calculations and confirmed PBE+D2/PW stability results. Especially the vibrational frequencies with the B3LYP hybrid functional that have been calculated for the (0001) surface are in good agreement with experimental findings. Concerning the barriers and the reaction rate constant, the expectations are fully met. It could be shown that recalculation of the transition state leads to an increased barrier, and a decreased rate constant when hybrid functionals or LMP2 are applied.
Furthermore, the molecular beam scattering of water on (0001) surface was studied. In a previous work by Hass the dissociation was studied by AIMD of molecularly adsorbed water, referring to an equilibrium situation. The experimental method to obtaining this is pinhole dosing. In contrast to this earlier work, the dissociation process of heavy water that is brought onto the surface from a molecular beam source was modeled in this work by periodic ab initio molecular dynamics simulations. This experimental method results in a non-equilibrium situation. The calculations with different surface and beam models allow us to understand the results of the non-equilibrium situation better. In contrast to a more equilibrium situation with pinhole dosing, this gives an increase in the dissociation probability, which could be explained and also understood mechanistically by those calculations.
In this work good progress was made in understanding the (1120) surface of α-Al₂O₃ in contact with water in the low-coverage regime. This surface cut is the third most stable one under UHV conditions and has not been studied to a great extent yet. After optimization of the clean, defect free surface, the stability of different adsorbed species could be classified. One molecular minimum and several dissociated species could be detected. Starting from these, reaction rates for various surface reactions were evaluated. A dissociation reaction was shown to be very fast because the molecular minimum is relatively unstable, whereas diffusion reactions cover a wider range from fast to slow. In general, the (112‾0) surface appears to be much more reactive against water than the (0001) surface. In addition to reactivity, harmonic vibrational frequencies were determined for comparison with the findings of the experimental “Interfacial Molecular Spectroscopy” group from Fritz-Haber institute in Berlin. Especially the vibrational frequencies of OD species could be assigned to vibrations from experimental SFG spectra with very good agreement. Also, lattice vibrations were studied in close collaboration with the experimental partners. They perform SFG spectra at very low frequencies to get deep into the lattice vibration region. Correspondingly, a bigger slab model with greater expansion perpendicular to the surface was applied, considering more layers in the bulk. Also with the lattice vibrations we could obtain reasonably good agreement in terms of energy differences between the peaks.
Hybrid nanomaterials offer the combination of individual properties of different types of nanoparticles. Some strategies for the development of new nanostructures in larger scale rely on the self-assembly of nanoparticles as a bottom-up approach. The use of templates provides ordered assemblies in defined patterns. In a typical soft-template, nanoparticles and other surface-active agents are incorporated into non-miscible liquids. The resulting self-organized dispersions will mediate nanoparticle interactions to control the subsequent self-assembly. Especially interactions between nanoparticles of very different dispersibility and functionality can be directed at a liquid-liquid interface.
In this project, water-in-oil microemulsions were formulated from quasi-ternary mixtures with Aerosol-OT as surfactant. Oleyl-capped superparamagnetic iron oxide and/or silver nanoparticles were incorporated in the continuous organic phase, while polyethyleneimine-stabilized gold nanoparticles were confined in the dispersed water droplets. Each type of nanoparticle can modulate the surfactant film and the inter-droplet interactions in diverse ways, and their combination causes synergistic effects. Interfacial assemblies of nanoparticles resulted after phase-separation. On one hand, from a biphasic Winsor type II system at low surfactant concentration, drop-casting of the upper phase afforded thin films of ordered nanoparticles in filament-like networks. Detailed characterization proved that this templated assembly over a surface is based on the controlled clustering of nanoparticles and the elongation of the microemulsion droplets. This process offers versatility to use different nanoparticle compositions by keeping the surface functionalization, in different solvents and over different surfaces. On the other hand, a magnetic heterocoagulate was formed at higher surfactant concentration, whose phase-transfer from oleic acid to water was possible with another auxiliary surfactant in ethanol-water mixture. When the original components were initially mixed under heating, defined oil-in-water, magnetic-responsive nanostructures were obtained, consisting on water-dispersible nanoparticle domains embedded by a matrix-shell of oil-dispersible nanoparticles.
Herein, two different approaches were demonstrated to form diverse hybrid nanostructures from reverse microemulsions as self-organized dispersions of the same components. This shows that microemulsions are versatile soft-templates not only for the synthesis of nanoparticles, but also for their self-assembly, which suggest new approaches towards the production of new sophisticated nanomaterials in larger scale.
Wood is used for many applications because of its excellent mechanical properties, relative abundance and as it is a renewable resource. However, its wider utilization as an engineering material is limited because it swells and shrinks upon moisture changes and is susceptible to degradation by microorganisms and/or insects. Chemical modifications of wood have been shown to improve dimensional stability, water repellence and/or durability, thus increasing potential service-life of wood materials. However current treatments are limited because it is difficult to introduce and fix such modifications deep inside the tissue and cell wall. Within the scope of this thesis, novel chemical modification methods of wood cell walls were developed to improve both dimensional stability and water repellence of wood material. These methods were partly inspired by the heartwood formation in living trees, a process, that for some species results in an insertion of hydrophobic chemical substances into the cell walls of already dead wood cells, In the first part of this thesis a chemistry to modify wood cell walls was used, which was inspired by the natural process of heartwood formation. Commercially available hydrophobic flavonoid molecules were effectively inserted in the cell walls of spruce, a softwood species with low natural durability, after a tosylation treatment to obtain “artificial heartwood”. Flavonoid inserted cell walls show a reduced moisture absorption, resulting in better dimensional stability, water repellency and increased hardness. This approach was quite different compared to established modifications which mainly address hydroxyl groups of cell wall polymers with hydrophilic substances. In the second part of the work in-situ styrene polymerization inside the tosylated cell walls was studied. It is known that there is a weak adhesion between hydrophobic polymers and hydrophilic cell wall components. The hydrophobic styrene monomers were inserted into the tosylated wood cell walls for further polymerization to form polystyrene in the cell walls, which increased the dimensional stability of the bulk wood material and reduced water uptake of the cell walls considerably when compared to controls. In the third part of the work, grafting of another hydrophobic and also biodegradable polymer, poly(ɛ-caprolactone) in the wood cell walls by ring opening polymerization of ɛ-caprolactone was studied at mild temperatures. Results indicated that polycaprolactone attached into the cell walls, caused permanent swelling of the cell walls up to 5%. Dimensional stability of the bulk wood material increased 40% and water absorption reduced more than 35%. A fully biodegradable and hydrophobized wood material was obtained with this method which reduces disposal problem of the modified wood materials and has improved properties to extend the material’s service-life. Starting from a bio-inspired approach which showed great promise as an alternative to standard cell wall modifications we showed the possibility of inserting hydrophobic molecules in the cell walls and supported this fact with in-situ styrene and ɛ-caprolactone polymerization into the cell walls. It was shown in this thesis that despite the extensive knowledge and long history of using wood as a material there is still room for novel chemical modifications which could have a high impact on improving wood properties.
Innerhalb dieser Arbeit erfolgte die erstmalige systematische Untersuchung von Vinylsulfonsäureethylester (1a), Phenylvinylsulfon (1b), N-Benzyl-N-methylethensulfonamid (1c) in der FUJIWARA-MORITANI Reaktion (alternativ als DHR bezeichnet). Bei dieser übergangsmetallkatalysierten Reaktion erfolgt der Aufbau einer neuen C-C-Bindung unter der doppelten Aktivierung einer C-H-Bindung. Somit kann ein atomökonomischer Aufbau von Molekülen realisiert werden, da keine Beiprodukte in Form von Salzen entstehen. Als aromatischer Reaktant wurden Acetanilide (2) verwendet, damit eine regiospezifische Kupplung durch die katalysatordirigierende Acetamid-Gruppe (CDG) erfolgt. Für die Pd-katalysierte DHR wurde eine umfangreiche Optimierung durchgeführt und anschließend konnten neun verschieden, substituierte 2 mit 1a und sieben verschieden, substituierte 2 mit 1b funktionalisiert werden. Da eine Reaktion mit 1c ausblieb, erfolgte ein Wechsel auf eine Ru-katalysierte Methode für die DHR. Mit dieser Methode konnte 1c mit Acetaniliden funktionalisiert werden und das Spektrum der verwendeten 2, in Form von deaktivierenden Substituenten erweitert werden.
Im Anschluss wurden die sulfalkenylierten Acetanilide in weiterführenden Reaktionen untersucht. Hierfür wurde eine Reaktionssequenz bestehend aus einer DeacetylierungDiazotierung-Kupplungsreaktion verwendet, um die Acetamid-Gruppe in eine Abgangsgruppe zu überführen und danach in einer MATSUDA-HECK Reaktion zu kuppeln. Mit dieser Methode konnten mehrere 1,2-Dialkenylbenzole erhalten werden und die CDG ein weiteres Mal genutzt werden. Neben der Überführung der CDG in eine Abgangsgruppe konnte diese auch in die Synthese verschiedener Heterozyklen integriert werden. Dafür erfolgte zunächst eine 1,3-Zykloaddition durch deprotonierten Tosylmethylisocanid an der elektronenarmen Sulfalkenylgruppe zur Synthese von Pyrrolen. Anschließend erfolgte eine Kupplung der PyrrolFunktion und der CDG durch Zyklokondensation, wodurch Quinoline dargestellt wurden. Durch diese Synthesen konnten Schwefelanaloga des Naturstoffes Marinoquionolin A erhalten werden.
Ein weitere übergangsmetallkatalysierte C-H-Aktivierungsreaktion, die MATSUDA-HECK Reaktion, wurde genutzt, um 1b zu mit verschieden, subtituierten Diazoniumsalzen zu arylieren. Hier konnten zahlreichen Styrenylsulfone erhalten werden. Der erfolgreiche Einsatz der Vinylsulfonylverbindungen in der Kreuzmetathese konnte innerhalb dieser Arbeit nicht erreicht werden. Daher erfolgte die Synthese verschiedener dialkenylierter Sulfonamide. Hierfür wurde die Kettenlänge der Alkenyl-Gruppe am Schwefel zwischen 2-3 und am Stickstoff zwischen 3-4 variiert. Der Einsatz der dialkenylierten Sulfonamide erfolgte in den zuvor untersuchten C-H-Aktivierungsmethoden.
N-Allyl-N-phenylethensulfonamid (3) konnte erfolgreich in der DHR und HECK Reaktion funktionalisiert werden. Hierbei erfolgte eine methodenspezifische Kupplung in Abhängigkeit von der Elektronendichte der entsprechenden Alkenyl-Gruppe. Die DHR führte zur selektiven Arylierung der Vinyl-Gruppe und die HECK Reaktion zur Arylierung an der Allyl-Gruppe. Gemischte Produkte wurden nicht erhalten. Für die weiteren Diolefine wurde komplexe Produktgemische erhalten. Des Weiteren wurden die Diolefine in der Ringschlussmetathese untersucht und die entsprechenden Sultame in sehr guten Ausbeuten erhalten. Die Verwendung der Sultame in der C-H-Aktivierung war erfolglos. Es wird vermutet, dass für diese zweifachsubstituierten Sulfonamide die vorhandenen Reaktionsbedingungen optimiert werden müssen.
Abschließend wurden verschiedene, enantiomerenreine Olefine ausgehend von Levoglucosenon dargestellt. Hierfür wurde Levoglucosenon zunächst mit einem Allyl- und 3-Butenylgrignard Reagenz umgesetzt. Die entsprechenden Produkte wurden in moderaten Ausbeuten erhalten. Eine weitere Methode begann mit der Reduktion von Levoglucosenon zum Levoglucosenol. Dieser Alkohol wurde mit Allylbromid erfolgreich verethert. Neben der Untersuchungen zur Ethersynthese, erfolgte die Veresterung von Levoglucosenol mit verschiedenen Sulfonylchloriden zu den entsprechenden Sulfonsäureestern. Diese Olefine wurden in einer Dominometathesereaktion untersucht. Ausgehend vom Allyllevoglucosenylether erfolgte die Darstellung eines Dihydrofurans.