Festkörper-NMR- und DNP-Untersuchungen an anorganisch-organischen Funktionsmaterialien

Produktinformationen "Festkörper-NMR- und DNP-Untersuchungen an anorganisch-organischen Funktionsmaterialien"
This thesis focusses on the application of solid state nuclear magnetic resonance (ssNMR) and dynamic nuclear polarization (DNP) to characterize functional materials. DNP enables to increase the sensitivity of ssNMR by several orders of magnitude which next to the measurements of 13C nuclei, allows measurements of 15N nuclei even in natural abundance. Therefore, ssNMR combined with DNP is used as a valuable tool for analyzing the chemical structure of inorganic-organic functional materials containing less surface functionalization or low specific surface areas and low sensitive nuclei. This approach is used to characterize a variety of materials including chemically modified cellulose, core-shell particle systems as well as thermosets. In the first part of this thesis, materials based on cellulose are investigated using DNP enhanced 13C CP MAS to identify surface near functional groups. In addition, the binding of certain nitrogen containing functional groups is verified by DNP enhanced 15N CP MAS experiments on samples containing15N in natural abundance. The second part of this work deals with the characterization of core-shell particle systems. Since these organic particles were functionalized with a silicon containing shell, 29Si CP MAS measurements, partially combined with DNP, are used in addition to 13C CP MAS measurements to examine the 29Si nuclei directly. Thus, it becomes feasible to characterize the cross-linking in the shell of core-shell particles with different alkoxysilane shells. Finally, this approach enables to characterize the binding of an allylhydidopolycarbosilane (SMP-10) to the core particles at a molecular level. In the third part, ssNMR techniques are applied on cross-linked epoxy resins (thermosets) to identify their structure and chemical composition. The chemical components of the cross-linked network system are determined directly by using 13C CP MAS NMR. In addition to the basic components (resin and hardener) the analyses are also extended to phosphorus-containing flame retardants, which are characterized by 31P CP MAS NMR. Finally, the database created from these measurements is applied to commercially available systems to demonstrate their applicability for industrial purposes.
Autor: Schäfer, Timmy
ISBN: 9783736974081
Verlag: Cuvillier Verlag
Auflage: 1
Sprache: Deutsch
Seitenzahl: 178
Produktart: Unbekannt
Erscheinungsdatum: 14.04.2021
Verlag: Cuvillier Verlag
Schlagworte: AMUPol Analytische Chemie Anisotropie Cellulose Chemie Cross Effect DAIPA DAPI DATMB DDS DEA DETDA80 DGEBA DGEBF DMTDA DNP DNP-Transfer-Mechanismen DOPO Duromere Duroplaste Dynamische Kernpolarisation Epoxidharze Epoxy-Equivalent-Gewicht Festkörper-NMR Flammschutzmittel Fourier transform Fouriertransformation Glasübergangstemperatur HMDA Hybrid Nanopartikel Hydroypropylcellulose Infrarotspektroskopie Kern-Schale-Partikel Kernspinquanzenzahl Kreuzpolarisationsexperiment Kunststoff Larmor-Frequenz Magic angel spinning Magnetresonanzspektroskopie Oberflächenfunktionalisierung Overhauser-Effekt Phosphor PMMA Physikalische Chemie Planck's quantum of action Plancksches Wirkungsquantum Polymerchemie Polymere Polymethylmethacrylat Pyrophosphate SMP-10 SPB 100 Signalverstärkung Siloxane Solid Effect Spektroskopie TEKPol Thermal Mixing Thermogravimetrie Umweltbewusstsein cross-polarisation experiment environmental awareness epoxy resins flame retardant funktionalisierte Papiermaterialien glass transition temperature gyromagnetic ratio gyromagnetisches Verhältnis hybrid nanoparticles hydrophobe Matrix hydrophobic matrix hydropropylcellulosa infrared spectroscopy magnetic resonance spectroscopy nuclear magnetic resonance number nuclear polarisation plastic pre-keramische Kern-Schale-Partikel pyrophosphates signal amplification solid state NMR spezifischen Oberflächen ssNMR thermosets