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Das Ziel dieses Grundlagenforschungsprojektes war, die Abbaubarkeit syntheti-scher Polymere unter realitätsnahen Umweltbedingungen durch eine Mischung bzw. Blend eines Hydrolyse- mit einem Oxidations-empfindlichen Polymer zu verbessern, während er unter Nutzungsbedingungen stabil sein sollte. Die Arbeits-hypothese war, dass sich die Polymere gegenseitig in ihrem Abbau beschleunigen, wenn sie der alternierenden Wechselbeanspruchung aus UV-Strahlung und hydrolytischer Beanspruchung ausgesetzt sind. Hierfür wurden vier Blends aus Polylactid (PLA) und Polystyrol (PS) oder Polymethylmethacrylat (PMMA) in unterschiedlichen Mischverhältnissen und Phasenstrukturen mittels additiver Fertigung hergestellt. Die Blends wurden über acht Wochen bei 45 °C mittels alternierender Wechselbeanspruchung aus je fünf Tagen UV-Bestrahlung und zwei Tagen hydrolytischer Beanspruchung beschleunigt gealtert. Für eine Basis-charakterisierung und als Vergleichsgrundlage wurden zusätzlich die Ausgangs-polymere PLA, PS und PMMA jeweils einzeln der hydrolytischen Beanspruchung, UV-Beanspruchung und alternierenden Wechselbeanspruchung unterzogen. Neben der Bestimmung der physiko-chemischen Effekte auf Prüfkörperoberflächen und Bulk wurden erstmalig auch die Wassermedien auf Mikroplastikgehalte und ökotoxikologische Wirkungen analysiert.
Die Ergebnisse ergaben, dass reines PLA kaum degradierte, aber der PLA-Abbau sowohl durch Mischung mit PS als auch PMMA verstärkt wurde. Entgegen der Hypothese wurde dadurch allerdings sowohl die Degradation von PS als auch von PMMA gehemmt. Es konnte gezeigt werden, dass sich PS und PMMA im Blend mit PLA durch radikalische Depolymerisation abbauten und die dabei entstehenden Radikale die PLA-Hydrolyse beschleunigten, was wiederum den Abbau der PS- und PMMA-Phasen verlangsamte. Die Ergebnisse zeigten, dass bei dem PLA/PS-Schichtblend (PLA/PS-50) der höchste PS-Gehalt von 50 % den stärksten Effekt auf den PLA-Abbau hatte. Insgesamt war allerdings selbst in diesem Fall die PLA-Degradation nach achtwöchiger Beanspruchung als gering einzustufen. Der totale Masseverlust von PLA/PS-50 entsprach nach achtwöchiger Wechselbeanspruchung -2,6 ± 0,2 mg absolut bzw. ca. -1,5 ± 0,1 % der Prüfkörpermasse, wovon 0,001 % in partikuläres Mikroplastik fragmentierte (PLA: 0,2 – 2,7 μg/g; PS: 3,0 – 3,4 μg/g). Folglich war der größte Teil des Masseverlustes der Prüfkörper auf die Bildung gelöster und/oder gasförmiger Degradationsprodukte zurückzuführen.
Ferner zeigten ökotoxikologische Untersuchungen der wechselbeanspruchten Wassermedien von PLA/PS-50 eine zunehmende Hemmung des Algenwachstums der Grünalge Desmodesmus subspicatus, die nach sechs Wochen Wechsel-beanspruchung zu 100 % Hemmung und nach acht Wochen zu einem Absterben der eingesetzten Algenzellen führte. Ergänzende Algenwachstumshemmungstests mit
2
Prüfkörpern der Ausgangspolymere PLA und PS zeigten, dass dies nicht auf der Bildung von partikulärem Mikroplastik, sondern gelösten PS-Degradations-produkten basierte, wie z. B. Benzaldehyd oder Benzoesäure.
Zusammenfassend lässt sich sagen, dass nur eine geringe Beschleunigung des PLA-Abbaus bei gleichzeitiger Hemmung des PS- bzw. PMMA-Abbaus stattfand - und das auch erst bei hohen PS- bzw. PMMA-Gehalten. Weiterführende Experimente zeigten, dass dies speziell für PS höchst bedenklich und nicht empfehlenswert ist, da es abhängig von der Konzentration der gelösten PS-Degradationsprodukte zu starken ökotoxikologischen Effekten kommen kann, die von der Hemmung des Algen-wachstums bis zum Algenabsterben reichen können. Folglich konnte die Arbeits-hypothese nur sehr eingeschränkt verifiziert werden und ist mit den hier untersuchten Polymeren als nicht zielführend einzuschätzen.
Peptide pools consist of short amino acid sequences and have proven to be versatile tools in various research areas in immunology and clinical applications. They are commercially available in many different compositions and variants. However, unlike other reagents that consist of only one or a few compounds, peptide pools are highly complex products which makes their quality control a major challenge. Quantitative peptide analysis usually requires sophisticated methods, in most cases isotope-labeled standards and reference materials. Usually, this would be prohibitively laborious and expensive. Therefore, an approach is needed to provide a practical and feasible method for quality control of peptide pools. With insufficient quality control, the use of such products could lead to incorrect experimental results, worsening the well-known reproducibility crisis in the biomedical sciences. Here we propose the use of ultra-high performance liquid chromatography (UHPLC) with two detectors, a standard UV detector at 214 nm for quantitative analysis and a high-resolution mass spectrometer (HRMS) for identity confirmation. To be cost-efficient and fast, quantification and identification are performed in one chromatographic run. An optimized protocol is shown, and different peak integration methods are compared and discussed. This work was performed using a peptide pool known as CEF advanced, which consists of 32 peptides derived from cytomegalovirus (CMV), Epstein–Barr virus (EBV) and influenza virus, ranging from 8 to 12 amino acids in length.
Unlike conventional alloys, which typically consist of one main element, high-entropy alloys (HEAs) contain five or more principal elements, which broaden chemical complexity and with it a realm of synergistic mechanisms. The AlMo0.5NbTa0.5TiZr HEA initiated a subclass of Al-containing refractory (r)HEAs that has recently drawn attention [2]. The alloy has a superalloy-resembling B2/bcc nanostructure, which inspired its name refractory high entropy superalloy (RSA). With high-temperature (HT) compressive strengths beyond conventional Ni-based superalloys, this nanostructure could be used for improved HT structural applications. However, in the application-relevant HT regime the Al-Zr-rich B2 phase decomposes to form a hexagonal Al-Zr-based intermetallic (Al4-xZr5; x: 0..1) [3,4]. This work explores the fascinating yet fatal micromechanisms associated to this phase transformation, in the context of creep, annealing and oxidation experiments performed between 800 and 1200 °C.
The material was produced by arc-melting and heat treatment in argon, which lead to grain boundaries decorated with up to 7%. Interrupted constant-load creep tests were performed under vacuum (at 10-4 Pa), at 900–1100 °C with external tensile stresses of 30–120 MPa. Oxidation experiments were separately conducted for 24 hours at 800 and 1000 °C in both dry (21% O2 + 79% N2) and humid (8% O2 + 74% N2 + 18% H2O) air. After the experiments, the samples were characterized by X-ray diffraction, scanning electron microscopy and transmission electron microscopy to reveal degradation mechanisms. Crystallographic texture, orientation relationships and stabilization of an oxygen-containing iso structure (Al4-xZr5(Ox-y); y: 0..x) of the Al-Zr-rich intermetallic are found and discussed.
Microplastics are solid polymeric particles with a size of 1-1000 μm (ISO/TR21960:2020), which can be emitted from mismanaged waste into the environment, where microplastic is now ubiquitous. What happens to the microplastics after ending up in the environment, which risks entail and what effects it has are not sufficiently clarified up to now. The most certain issue is that the plastic particles in the environment are exposed to natural ageing, are fragmenting and degrading, such that the potential risk to ecosystems and humans is increasing due to the formation of smaller and smaller particles, potentially even including nanoplastics, if these are ingested before their further degradation. Therefore, and in view of a possible registration of polymers under REACH in the future, it is necessary to investigate the degradation of thermoplastic polyurethanes (TPU) regarding hydrolysis stability to evaluate possible risks and effects to the environment.
In the present studies, one thermoplastic polyurethane – with and without hydrolysis stabilizer – is exposed to different pH buffers at 50°C for 14 days to investigate hydrolysis depending to different pH values (acid, alkali and neutral) based on OECD guideline TG111. The hydrolysis behavior of the TPUs is characterized by surface sensitive techniques and on bulk properties. First degradation effects can be detected by SEC. Hydrolysis, especially under acidic and basic conditions, leads to chain scissions to lower molecular masses. Furthermore, the degradation products which indicate the structure of the bulk material were detected by thermo-analytical methods like TGA-FTIR for the small degradation products and the thermo extraction/desorption-gaschromatography/mass spectrometry (TED-GC/MS) for bigger degradation products. Acidic and basic hydrolysis shows the same degradation behavior which is caused by a preferred scission of the ester and urethane functionalities. Surface-sensitive techniques such as XPS demonstrate less carboxylic acid formation at acidic than at alkaline pH value in the TPU without stabilator, where as the TPU with stabilator ages to the same extent in both pH ranges. Altogether, the hydrolysis of TPUs – independently of added stabilizer or not – in acid and alkali environment is accelerated compared to the neutral hydrolysis.
Degradation and damage analysis of composite pressure vessels via experimental modal analysis
(2023)
For mobile gas storage systems, the application of type IV pressure vessels is state of the art. Type IV tanks consist of an inner polymer liner fully wrapped with fibre-reinforced plastic (FRP). Because of the complex fabric of the FRP as well as a difficulty estimable interaction behaviour between the single components under load, there are still no satisfying non-destructive testing methods to assess the current state of failure nor to estimate the level of degradation accurately and economically. At BAM division 3.5, analysing the ageing process of mobile composite pressure vessels is a major task to ensure safe usage over the whole lifetime. In this context, key aspects of our ongoing research activities are the invention of new test procedures and the development of accurate lifetime prediction models. In order to determine the level of degradation or damage, one meaningful non-destructive approach is to analyse the structural dynamic behaviour via an experimental modal analysis (EMA). Over the last few years, different types and sizes of composite pressure vessels have been tested in several research projects. The presented paper gives an insight into how to extract and interpret modal parameters and how to fit them to the results of residual strength tests.
Degradation and damage analysis of composite pressure vessels via experimental modal analysis
(2023)
For mobile gas storage systems, the application of type IV pressure vessels is state of the art. Type IV tanks consist of an inner polymer liner fully wrapped with fibre-reinforced plastic (FRP). Because of the complex fabric of the FRP as well as a difficulty estimable interaction behaviour between the single components under load, there are still no satisfying non-destructive testing methods to assess the current state of failure nor to estimate the level of degradation accurately and economically. At BAM division 3.5, analysing the ageing process of mobile composite pressure vessels is a major task to ensure safe usage over the whole lifetime. In this context, key aspects of our ongoing research activities are the invention of new test procedures and the development of accurate lifetime prediction models. In order to determine the level of degradation or damage, one meaningful non-destructive approach is to analyse the structural dynamic behaviour via an experimental modal analysis (EMA). Over the last few years, different types and sizes of composite pressure vessels have been tested in several research projects. The presented paper gives an insight into how to extract and interpret modal parameters and how to fit them to the results of residual strength tests.
Im der Präsentation werden, neben der Möglichkeit der Mikroplastikquantifizierung, auf weitere Anwendungsfelder der Methode TED-GC/MS eigegangen. Dies beinhaltet die Erfassung von Degradationsprodukten UV/O2 geschädigter Polymere und die Detektion von Additiven. Die Optimierung der Methode betreffend Messzeit und materialspezifischer Messanforderung sind ebenfalls Gegenstand.
Nowadays, in every terrestrial and aquatic ecosystem, even in the remotest areas, small residues of plastics, the so called microplastic (MP) can be found. MPs are particles with a size of 1-1000 µm (ISO/TR 21960:2020), mainly containing synthetic polymers like polyethylene (PE), polypropylene (PP), polystyrene (PS) or polyethylene terephthalate (PET). Even styrene-butadiene rubber (SBR) as an indication for tire wear is included due to similar particle formation. To understand the MPs consequences to the environment, it is of high priority to capture its extent of contamination. It is surprising that in the analysis of polymer masses in environmental samples, PE, PS and SBR are often detected, but only small amounts of PP, although this is the second most commonly produced standard plastic and many MP particles originate from carelessly disposed packaging materials.
This presentation provides hypotheses about the reasons of rare PP identification and mass quantification in environmental samples. Different investigations of pristine PP and representative environmental samples, including the pre-treatment by Accelerated Solvent Extraction (ASE) or with density separation followed by the thermal extraction / desorption gas chromatography-mass spectrometry (TED-GC/MS) are presented. The results are discussed according to the material properties and a possible degradation mechanism under different weathering conditions which indicate less stability under relevant storage conditions.
The most massive design on the Baltic shore used geosynthetic materials, the landslide protection construction in Svetlogorsk (1300 m long, 90,000 m2 area, South-Eastern Baltic, Kaliningrad Oblast, Russian Federation) comprises the geotextile and the erosion control geomat coating the open-air cliff slopes. Due to changes in elastic properties during long-term use in the open air, as well as due to its huge size, this structure can become a non-negligible source of microplastic pollution in the Baltic Sea. Weather conditions affected the functioning of the structure, so it was assessed that geosynthetic materials used in this outdoor (open-air) operation in coastal protection structures degraded over time. Samples taken at points with different ambient conditions (groundwater outlet; arid places; exposure to the direct sun; grass cover; under landslide) were tested on crystallinity and strain at break. Tests showed a 39–85% loss of elasticity of the polymer filaments after 3 years of use under natural conditions. Specimens exposed to sunlight are less elastic and more prone to fail, but not as much as samples taken from shaded areas in the grass and under the landslide, which were the most brittle.
The environmental fate of the frequently used broad-spectrum β-lactam antibiotic amoxicillin (AMX) is of high concern regarding the potential evolution of antimicrobial resistance (AMR). Moreover, it is known that AMX is prone to hydrolysis, yielding a variety of hydrolysis products (HPs) with yet unknown effects. Studies to identify those HPs and investigate their formation mechanisms have been reported but a long-term study on their stability in real water samples was missing. In this regard, we investigated the hydrolysis of AMX at two concentration levels in four distinct water types under three different storage conditions over two months. Concentrations of AMX and four relevant HPs were monitored by an LC-MS/MS method revealing pronounced differences in the hydrolysis rate of AMX in tap water and mineral water on the one hand (fast) and surface water on the other(slow). In this context, the occurrence, relative intensities, and stability of certain HPs are more dependent on the water type than on the storage condition. As clarified by ICP-MS, the main difference between the water types was the content of the metals copper and zinc which are supposed to catalyze AMX hydrolysis demonstrating an effective method to degrade AMX at ambient conditions.