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In der vorliegenden Arbeit wird die Online-Kopplung der Asymmetrischen Fluss- Feldflussfraktionierung (A4F) mit Kleinwinkelröntgenstreuung (SAXS) als leistungsfähiges analytisches Werkzeug vorgestellt und auf aktuelle Problemstellungen in der Nanopartikelanalytik wie auch auf Modellsysteme praxisrelevanter Polymere angewandt. Die A4F bietet die Möglichkeit, Suspensionen oder Lösungen von Teilchen ihrer Größe nach aufzutrennen. Bedingt durch das besondere Trennprinzip werden auf den Analyten nur minimale Scherkräfte wirksam, die im Gegensatz dazu bei anderen chromatographischen Methoden in erheblichem Maße auftreten können. Dies ermöglicht auch die Bearbeitung von diesbezüglich sehr empfindlichen Proben ohne dabei deren Integrität zu manipulieren. Die Kleinwinkelröntgenstreuung ermöglicht die zerstörungsfreie Untersuchung von Strukturmerkmalen in einer Größendomäne von etwa einem bis einhundert Nanometern. Durch die Kopplung mit A4F wird die Komplexität der ausgewählten Systeme maßgeblich verringert, die sonst aufgrund der sehr breiten Größenverteilungen der enthaltenen Teilchen schwer zu charakterisieren sind. Es konnten mit dieser Methodik detaillierte Aussagen über die Probenbeschaffenheit in Hinblick auf Teilchengestalt, -größenverteilung bzw. -konformation getroffen werden. Die Einbindung eines Dynamischen Lichtstreudetektors in den Kopplungsaufbau ließ noch weitergehende Aussagen zu. So wurde gezeigt, dass eine Nanopartikelsuspension sowohl hinsichtlich der Form, Größe und Größenverteilung der Nanopartikelkerne als auch der Stärke der Stabilisatorschicht in einem Online-Experiment charakterisiert werden kann. Diese Parameter sind wichtige Kenngrößen, die sowohl für die Funktionalität als auch Bioverfügbarkeit und Toxizität von Nanopartikeln maßgeblich sind und auf diese Weise zeitsparend und mit hoher Präzision erhalten werden konnten. Desweiteren wurde diese Kopplungsmethode erstmals auf verschiedene Polymersysteme wie Polyvinylpyrrolidon sowie starke und schwache Polyelektrolyte mit Erfolg angewendet. Durch die eingesetzte Größentrennung können Proben in einem sehr weiten Molmassenbereich fraktioniert werden, die häufig zu unerwünschten Wechselwirkungen in trägerbasierten Trennmethoden neigen. Durch die verwendete Röntgenstreuung konnten auch Strukturdetails kleiner Polymer- Größenfraktionen aufgelöst werden, die mit üblichen Standardverfahren nicht mehr zugänglich sind.
The dispersed iron oxide nanoparticles of ferrofluids in aqueous solution are difficult to characterize due to their protective polymer coatings. We report on the bimodal size distribution of superparamagnetic iron oxide nanoparticles found in the MRI contrast agent Resovist, which is a representative example of commercial nanoparticle-based pharmaceutical formulations. The radii of the majority of the nanoparticles (>99%) range from 4 to 13 nm (less than 1% of the particles display radii up to 21 nm). The maxima of the size distributions are at 5.0 and 9.9 nm. The analysis was performed with in situ characterization of Resovist via online coupling of asymmetrical flow field-flow fractionation (A4F) with small-angle X-ray scattering (SAXS) using a standard copper X-ray tube as a radiation source. The outlet of the A4F was directly coupled to a flow capillary on the SAXS instrument. SAXS curves of nanoparticle fractions were recorded at 1-min time intervals. We recommend using the A4F-SAXS coupling as a routine method for analysis of dispersed nanoparticles with sizes in the range of 1-100 nm. It allows a fast and quantitative comparison of different batches without the need for sample preparation.
We report on a hyphenated polymer analysis method consisting of asymmetrical flow field-flow fractionation (A4F) coupled online with small-angle X-ray scattering (SAXS) and dynamic light scattering (DLS). A mixture of six poly(styrene sulfonate)s with molar masses in the range of 6.5 × 103 to 1.0 × 106 g mol-1 was used as a model system for polyelectrolytes in aqueous solutions with a broad molar mass distribution. A complete polymer separation and analysis was performed in 60 min. Detailed information for all polymer fractions are available on i) the radii of gyration, which were determined from the SAXS data interpretation in terms of the Debye model (Gaussian chains), and ii) the diffusion coefficients (from DLS). We recommend using the A4F-SAXS-DLS coupling as a possible new reference method for the detailed analysis of complex polymer mixtures. Advantages of the use of SAXS are seen in comparison to static light scattering for polymers with radii of gyration smaller then 15 nm, for which only SAXS produces precise analytical results on the size of the polymers in solution.
Polyelectrolytes such as PAA and its salts are widely used, but are notoriously difficult to characterize due to their polyelectrolyte properties and broad molecular mass distributions. In this paper, we report on a new PAA analysis by combining asymmetrical flow field-flow fractionation and an advanced SAXS technique using an acoustic levitator to minimize background scattering. The proof-of-principle is demonstrated with a mixture of three standard PAAs with different molecular masses. Detailed information on the PAA fractions is available on radii of gyration, polymer contour lengths, and coil conformation. Our method is expected to be applicable for a wide range of water-soluble synthetic and natural polymers and ideal for molecular masses of 5 × 103–2 × 105 g · mol-1.
We report on the characterization of the solution structure of poly(N-vinyl-2-pyrrolidone)s (PVP) by small-angle X-ray scattering (SAXS) and by online coupling of asymmetrical flow field-flow fractionation (A4F), SAXS and dynamic light scattering (DLS). The commercial products PVP K30 and PVP K90 with nominal molar masses of 40 × 103 and 360 × 103 g mol-1, respectively, were investigated separately and as binary mixture. Detailed information for all polymer fractions is available on the polymer contour lengths and the diffusion coefficients. Key areas of applications for the A4F-SAXS-DLS coupling are seen in comparison to static light scattering for polymers with radii of gyration smaller than 10 nm, for which only SAXS produces precise analytical results on the size of the polymers in solution.
We studied the magnetic resonance imaging liver contrast agent Resovist by a variety of magnetic measurement techniques, in order to understand the physical mechanism of their high magnetic particle imaging (MPI) performance, wirh a focus on the size-dependent contributions of the MPI signal. To this end, we used asymmetric flow field-flow fractionation to separate Resovist into a set of fractions with defined hydrodynamic diameters. The individual fractions were magnetically characterized by static magnetization and magnetorelaxometry measurements to obtain the corresponding effective magnetic anisotropy and effective size distribution parameters. In addition, the MPI performance of each fraction was assessed by magnetic particle spectroscopy. We observed an MPI signal gain of about 100% with respect to their iron amount for the best fraction. Relating these finding to the results from magnetic characterization provides more insight into mechanisms of MPI performance of Resovist. This knowledge may help to improve the design of novel MPI tracers.
Resovist® originally developed as a clinical liver contrast agent for Magnetic Resonance Imaging exhibits also an outstanding performance as a tracer in Magnetic Particle Imaging (MPI). In order to study the physical mechanism of the high MPI performance of Resovist®, we applied asymmetric flow fieldflow fractionation (A4F) and static magnetic fractionation (SMF) to separate Resovist® into a set of fractions with defined size classes. As A4F based on an elution method separates MNP according to their hydrodynamic size, SMF fractionates a particle distribution by its magnetic moment. The obtained fractions of both separation techniques were then magnetically characterized by magnetorelaxometry measurements to extract the corresponding effective magnetic anisotropy and hydrodynamic size distribution parameters. Additionally, the MPI performance of each fraction was assessed using magnetic particle spectroscopy. With both separation techniques fractions (normalized to their iron amount) an MPI signal gain of a factor of two could be obtained, even though the distribution of effective anisotropy and hydrodynamic size were significantly different. Relating these findings to the results from magnetic characterization allows for a better understanding of the underlying mechanisms of MPI performance of Resovist®. This knowledge may help to improve the design of novel MPI tracers and development of separation methods.