Analytische Chemie
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- Quantitative NMR-Spektroskopie (4)
- qNMR (4)
- Online NMR spectroscopy (3)
- Prozessanalytik (3)
- Reaction monitoring (3)
- Electron backscatter diffraction (2)
- Industrie 4.0 (2)
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Eingeladener Vortrag
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Die quantitative Bestimmung der Haftfestigkeit von Beschichtungen ist von entscheidender Bedeutung sowohl für die Entwicklung als auch für die Qualitätssicherung. In einer Vergleichsstudie zur Haftfestigkeit von optischen und ophthalmischen Schichten wurde mit Hilfe der Zentrifugentechnologie der Einfluss verschiedener Parameter (Substratdicke, Oberflächenvorbehand-lung, Haftvermittler) auf die Haftfestigkeit optischer Schichten auf silikatischen und ophthalmischer Schichten auf polymeren Substraten untersucht.
Zur Bestimmung der Haftfestigkeit in der physikalisch korrekten Dimension Kraft pro Fläche im Stirnabzug stehen die Ein-Proben-Prüfung mit der Zugprüfmaschine und die Mehr-Proben-Prüfung mittels Zentri- fugentechnologie zur Verfügung. Die Zentrifugentechnologie wurde ausgewählt, da die Prüfung von bis zu acht Proben unter nahezu identischen Versuchsbedingungen und somit eine statistisch gesicherte Bestimmung der Haftfestigkeit möglich sind.
Es konnte nachgewiesen werden, dass die Substratdicke einen erheblichen Einfluss auf die gemessene Haftfestigkeit hat. Dies entspricht den Erwartungen, da es sich bei der Haftfestigkeit um eine System- eigenschaft des Schicht-Substrat-Systems handelt. Bei den Delaminationsbrüchen (DF) konnte zwischen Delamination des metallischen Reflektors (DF-R) und Delamination des Dielektrikums (DF-D) unter- schieden werden. Im Fall hinreichender Haftfestigkeit der Beschichtung traten auch Adhäsionsbrüche am Interface zum und Kohäsionsbrüche im Klebstoff auf. Nachfolgende Untersuchungen werden sich mit alternativen Klebstoffen und weiterentwickelten Fügestrategien befassen.
Air-coupled ultrasound has been applied increasingly as a non-destructive testing method for lightweight construction in recent years. It is particularly appropriate for composite materials being used in automotive and aviation industry. Air-coupled ultrasound transducers mostly consist of piezoelectric materials and matching layers. However, their fabrication is challenging and their signal-to-noise ratio often not sufficient for many testing requirements. To enhance the efficiency, air-coupled ultrasound transducers made of cellular polypropylene have been developed. Because of its small density and sound velocity, this piezoelectric ferroelectret matches the small acoustic impedance of air much better than matching layers applied in conventional transducers. In our contribution, we present two different methods of spherical focusing of ferroelectret transducers for the further enhancement of their performance in NDT applications. Measurements on carbon-fiber-reinforced polymer (CFRP) samples and on metal adhesive joints performed with commercially available focused air-coupled ultrasound transducers are compared to measurements executed with self-developed focused ferroelectret transducers.
Introduction to PowderCell
(2015)
Mycotoxins are secondary metabolites of fungi which have diverse detrimental effects on humans, animals and crops. Traceable worldwide in foods and animal feeds, these contaminants cause manifold diseases and extensive economic losses. Therefore, European legislation set maximum levels of distinct mycotoxins to minimize the risks for the buying public. But standardized food analysis techniques fail to detect masked mycotoxins, whose research increasingly moves to the fore in recent years. They are formed from detoxification metabolism of plants as well as from fungi, which conjugate for example with glucosides or dihexosides. All masked mycotoxins have one thing in common: They are not detectable with standard methods, thereby contributing to the overall exposure and pose an additional health risk for the consumer.
The dissertation work will focus on the following potential new group of masked toxins. Food safety relevant mycotoxins like zearalenone and ochratoxin A possess one or more 1,3-dicarbonyl moieties. Latter are principally able to form thermodynamically stable chelate complexes with metal cations. First investigations at BAM showed interactions between zearalenone and copper ions and it is conceivable that they possibly build a complex. Our main focus is now to identify, characterize and quantify 1,3-dicarbonyl mycotoxin metal complexes as potential candidates within the group of conjugated mycotoxins.
We will simulate processes of biotransformation and identify distinct metabolites by electrochemistry coupled to liquid chromatography/mass spectrometry (EC-HPLC-MS). The obtained knowledge contributes to a better understanding of masked mycotoxins and an improved monitoring of foods and feeds, to ensure food safety.
Titanium dioxide is one of the most studied metal oxides due to its interesting chemical, surface, electronic and (photo)catalytic properties. These properties provide this material of multisectorial applications, ranging from healthcare, photocatalysis, smart materials with self cleaning and self sterilizing properties and solar energy harvesting (photovoltaics and water photosplitting). However it is difficult to correlate the functional properties of TiO₂ nanomaterials to the properties at single nanoparticle level due to the high polydispersity in shape, size and surface properties of the currently available TiO₂ nanoparticles (NPs) Although intensive experimental and theoretical studies have been conducted on the reactivity of different surfaces of metal oxides such as TiO₂ [1,2] much less attention is paid on the dependence of functional properties, like photocatalytic activity, dye adsorption, open circuit potential and fill factor in dye sensitized solar cells, on crystal facets in different orientations [3]. One of the goal of SETNanoMetro is the development of design rules to tune crystal facets of TiO₂ NPs in order to optimize and control functional properties. By tuning the ratio of different facets, the functional properties would be correspondingly changed. In the present work we have developed a series of design rules in order to obtain sets of anatase TiO₂ NPs with low polydispersity and to tune their shape and their size though hydrothermal processing of Ti(IV)-Triethanolamine complex in presence of different shape controllers (OH-, triethanolamine, fluoride). Through a careful experimental design the influence of many process parameters (pH, temperature, shape controller type and concentration) on the synthesis outcome (size, shape and polydispersity), a predictive soft model was developed. The model is able to predict reasonably well the synthesis outcome allowing to tune the shape factor from 5 (prisms) to 1.5 (bipyramids) to 0.2 (platelets). This allows to control the main crystal facets exposed ranging from (100) to (001).