Filtern
Erscheinungsjahr
Dokumenttyp
- Zeitschriftenartikel (38)
- Posterpräsentation (34)
- Vortrag (26)
- Beitrag zu einem Tagungsband (6)
- Forschungsbericht (1)
Sprache
- Deutsch (53)
- Englisch (51)
- Mehrsprachig (1)
Schlagworte
- AHTN (6)
- Arsenolipids (5)
- LA-ICP-MS (5)
- Umweltsimulation (5)
- ESI-MS/MS (4)
- GC-MS (4)
- Metformin (4)
- Warfarin (4)
- XRF (4)
- BFR (3)
Organisationseinheit der BAM
- 1 Analytische Chemie; Referenzmaterialien (29)
- 1.8 Umweltanalytik (29)
- 1.7 Organische Spuren- und Lebensmittelanalytik (13)
- 1.1 Anorganische Spurenanalytik (12)
- 1.4 Prozessanalytik (10)
- 4 Material und Umwelt (10)
- 4.1 Biologische Materialschädigung und Referenzorganismen (7)
- 4.2 Material-Mikrobiom Wechselwirkungen (7)
- 4.0 Abteilungsleitung und andere (4)
- 4.3 Schadstofftransfer und Umwelttechnologien (3)
Paper des Monats
- ja (1)
Eingeladener Vortrag
- nein (26)
The title compound (AHTN-OH), C17H26O, was prepared in order to provide standard materials for the qualitative and quantitative analysis of environmental pollutants. The molecule possesses a chiral C atom, although the structure determination was performed on racemic material, expressed in the structure as disordered chiral sites. The asymmetric unit consists of four AHTN-OH molecules containing an hydroxy group and forming a tetrameric cyclic motif built up by four strong hydrogen bonds between these hydroxy groups and additionally by two weak C–H···π interactions. Furthermore, these tetramers are linked via very weak C–H···π interactions, forming chains along the c axis.
A first pilot study on the sorption of environmental pollutants on various microplastic materials
(2017)
With the drastic increase in plastic production, the input of plastic particles into the environment has become a recognised problem.
Xenobiotics are able to sorb to polymer materials, and this process is further enhanced where they Encounter microplastics (plastic fragments <5 mm). In this work we studied the sorption of metformin, a type-2 diabetes drug, and difenoconazole, a fungicide, onto the virgin polymer materials polyamide (PA), polypropylene (PP), and polystyrene (PS). Additionally, PP was cryo-milled and PA was treated with acid to investigate the influence of an increase in surface area and chemical modification. The material properties were also studied by dynamic scanning calorimetry (DSC), gel permeation chromatography (GPC) and Fourier transform infrared spectroscopy (FTIR). Sorption experiments were performed on the basis of a full factorial design examining the effect of agitation, pH value, and salinity. Experimental results showed that difenoconazole sorbs readily to all microplastics, whereas the more polar analyte metformin did not show any affinity to the materials used. For difenoconazole the governing factor in all cases is agitation, while both pH and salinity exhibited only a slight influence. The modification of polymers leads to enhanced sorption, indicating that an increase in surface area (cryo-milled PP) or inner volume (acid-treated PA) strongly favours adsorption. Moreover, long-term experiments demonstrated that the time until equilibrium is reached depends strongly on the particle size.
Natural and synthetic estrogens are key endocrine-disrupting chemicals. Despite occurring at ultra-trace levels (below ng L-1), it is believed that they are contributing to an increase in feminized fish and other endocrine disruptive effects, and hence, their inclusion in the Watch list was not unexpected. One of the main sources ofestrogens to surface waters is wastewater effluent. Once in surface waters, they can partition into different compartments, i.e., water and suspended particulate matter. For this reason, there is an urgent need for a methodology to monitor estrogen levels below the environmental quality standards (EQS) set by the Water Framework Directive requirements.
In this study, a precise and accurate gas chromatography-mass spectrometry method (GC-MS/MS) for the analysis of estrone (E1), 17β-estradiol (17β-E2), 17α-estradiol (17α- E2), 17-alpha-ethinylestradiol (EE2), and estriol (E3) in whole water samples with ng L-1 limit of quantification (LOQ) was developed and validated in accordance with CEN/TS 16800:2020 guidelines.
Drug therapy for diabetes mellitus has increased significantly in recent years. 1,1-Dimethylbiguanide hydrochloride (metformin) is the most common drug used for the treatment of diabetes. Metformin is not metabolized in the human body and enters thewater cycle via sewage.
A new gas chromatography-mass spectrometry (GC-MS) method has been developed which enables the quantification of metformin in surface water samples even at low concentrations in the ng L-1 range.
A solid phase extraction (SPE) method for the preconcentration of metformin and the internal standard 1-butylbiguanide (buformin) was established, and the method parameters such as the composition and volume of the eluent were optimized. Derivatization of metformin and
buformin was obtained by using n-methyl-bis (trifluoroacetamide)(MBTFA). The reaction conditions of the derivatization, such as the reaction temperature and volume of the derivatization agent, were evaluated. The limit of detection (LOD) and limit of quantification (LOQ) were determined to be 3.9 ng L-1 and 12 ng L-1 in surface water samples. Linearity was shown over a concentration range of 10–50 ng L-1. The good performance of the method was demonstrated by comparison with a liquid chromatography tandemmass spectrometry (LC-MS/MS) method. The results indicate that the GC-MS method is a reliable and sensitive alternative for the quantification of metformin in surface water.
1.
EDC WFD project to deliver reliable measurements of estrogens for better monitoring surveys and risk assessments.
Collaboration between National Metrology Institutes and advanced research institutes from 6 European countries A Balance of expertise: development and certification of RM, proficiency tests / interlaboratory comparison design, method development and validation, standardisation A 3 years project: September 2019- August 2022
Strong engagement with stakeholders (Advisory Group)
The derivatization of organoarsenic compounds by different reagents like thioglycolates or dithiols and the subsequent analysis by GC–MS as a molecular specific technique was investigated and described. The possible derivatization reagents methyl- and ethylthioglycolate (TGM and TGE), 1,3-propane- and 1,5-pentanedithiol (PDT and PeDT), which transfer the polar and nonvolatile analytes dimethylarsenate (DMA), monomethylarsonate (MMA), arsenite and arsenate into volatile compounds, were evaluated. The application for real samples like fish material was also studied.
In addition the gas chromatographic separation and resolution was optimized and experiments were carried out to determine the highest derivatization rates. Derivatization reagents were evaluated in terms of quantity and stability of the formed chemical species.
All derivatization products were characterized by mass spectrometry in order to identify the separated arsenic species.
The most efficient conversion of DMA and MMA was observed by using ethylthioglycolate as derivatization agent. Finally, the derivatization procedure and the GC–MS-method were validated to determine linearity, precision, selectivity, analytical limiting values and recoveries. For the proposed method a limit of detection (LOD) of 5.8 pg for DMA and 14.0 pg for MMA was found. The accuracy was established by comparing the mean value measured for DMA in the certified reference material BCR-627 (tuna fish) with the certified one.
MMA was not quantified in marine samples due to its low content. In shrimp samples DMA was not detectable. For codfish a DMA-content of 0.20±0.004 mg kg-1, for 'Surströmming' an amount of 0.38±0.02 mg kg-1 and for herring, which showed the highest amount of DMA, a content of 1.15±0.03 mg kg-1 was determined.
Seit 1968 wird durch Lunde vermutet, dass sich lipidlösliche Arsenverbindungen im Muskelgewebe fettreicher Fische, wie dem Hering (clupea harengus) anreichern. Obwohl marine Organismen ausgiebig untersucht worden sind, gibt es bisher wenige Arbeiten zur analytischen Charakterisierung dieser Spezies. In den 60iger Jahren konnte Gulbrand Lunde erstmalig den Arsengehalt in Fischölen von bis zu 20 mg/kg bestimmen. Seitdem wurden drei Klassen an Arsenolipiden identifiziert und in Ansätzen charakterisiert: Arsenokohlenwasserstoffe (As-HC), Arsenofettsäuren (As-FA) und die Arsenozuckerphospholipide (As-SugPL). In der vorzustellenden Arbeit konnten erstmalig mehr als 20 fettlösliche Arsenolipide in Heringsfilet mittels der Kopplungen HPLC-ICP-MS und ESI-Q-TOF-MS identifiziert und semiquantifiziert werden. Dabei erfolgte die strukturelle Zuordnung über die exakten Massen und durch gezielte MS-MS-Experimente, deren Fragmente eine eindeutige Charakterisierung ermöglichten. Es konnten bisher unbekannte Arsenolipide im Hering nachgewiesen werden. Eine Untersuchung weiterer Fischarten ergab, dass diese Arsenverbindungen in unterschiedlichen marinen Speisefischen weiter verbreitet sind, als bisher angenommen. In Stoffwechselstudien konnte gezeigt werden, dass es zu einer erhöhten Konzentration des kanzerogenen Dimethylarsinats (DMA) in menschlichem Urin nach dem Verzehr von Hering kommt. Weiterhin konnte aufgrund der Ergebnisse eventuell im Hering enthaltenes anorganisches Arsen, Monomethylarsonat und DMA als Ursache ausgeschlossen werden. Da Arsenobetain nachweislich nicht im menschlichen Körper metabolisiert wird, sind die in den durchgeführten Arbeiten erzielte Ergebnisse zweckdienlich, die These zu bestärken, dass die identifizierten Arsenolipide zu DMA abgebaut werden können.
Arsenolipids (AsL) of the type arsenic-containing fatty acids (AsFA) and hydrocarbons (AsHC) are known to occur in seafood and their identification is today a challenge due to the need of data for toxicological assessment. The aim of this investigation was to enhance the data concerning AsL in commercial canned cod liver. Therefore, the present study focuses on the quantification and identification of AsL by LC–ICP-MS combined with ESI-MS. The molecular structure of 17 AsL was elucidated on the basis of their exact mass and their product ion spectra and two new AsFA tentatively identified. The total arsenic concentration in four different canned cod liver analyzed by ICP-MS ranged from 2.6 to 5.5 mg As/kg with an extraction recovery of 98%. The AsL detected by RP-IPC–MS comprise 58–95% of the total arsenic content, indicating that AsL are a major class of arsenic in canned cod liver. Much of the AsL detected in the canned cod liver extracts are, however, not yet identified.
Practical applications: The results obtained in the present research show the possibility to apply the current extraction and detection method in different biological samples for the determination of AsL. Additionally, this information can be used for further studies to assess the risk of AsL for consumer health. On the other hand, the MS/MS results could be used for the future identification of AsL without the ICP-MS detection and thus, low the cost of the analysis.
Zu den letzten beiden Jahrestagungen der GUS wurden Verfahren und Methoden vorgestellt, die es gestatten, den Transfer von Schadstoffen aus Materialien und Produkten in die Umwelt unter umweltrelevanten Bedingungen beschreiben zu können. Dabei lag der Fokus auf den Materialien und der eingesetzten Umweltsimulationen. In einem sich anschließenden Schritt soll nun das Verhalten der freigesetzten organischen Schadstoffe unter den Bedingungen von realen und simulierten Umwelteinflüssen charakterisiert und beschrieben werden. Hier werden im Detail drei potentielle Schadstoffe betrachtet, die Inhaltsstoffe bzw. Additive in den jeweils eingesetzten Materialien sind. Im Falle von Polypropylen (PP) und Polystyrol (PS) handelt es sich um polybromierte Flammschutzmittel BDE 209 (Decabrom-diphenylether, als Einzelsubstanz) und HBCD (Hexabromcyclododecan, als technische Formulierung). Für das eingesetzte Polycarbonat ist BPA (Bisphenol A) als Schadstoff zu definieren, welcher unter umweltrelevanten Bedingungen freigesetzt wird. Im Rahmen der durchzuführenden Arbeiten sollen die aufgeführten prioritären Schadstoffe hinsichtlich möglicher Transformationsprozesse in Umwelt und Klärwerk charakterisiert werden. Die unter den Bedingungen der Ozonung, Chlorierung und UV-Bestrahlung erhaltenen Transformationsprodukte (TPs) sollen im Sinne einer Non-Target-Analytik identifiziert und eindeutig charakterisiert werden. Die Ergebnisse sollen mittels vorhandener Analysenverfahren, wie GC-EI-MS, HPLC-ESI-IT-MSn bzw. LC-MS/MS erzeugt bzw. abgesichert werden. Anhand der in der Struktur eindeutig zu beschreibenden Transformationsprodukte und der Charakterisierung von potentiellen Intermediaten sollen belastbare Reaktionswege und –mechanismen abgeleitet werden.