1.5 Proteinanalytik
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- 2018 (2) (entfernen)
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- Air traffic (1)
- Ambient Desorption/Ionization (1)
- Characterization (1)
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- Laser-Induced Plasma (1)
- Mass Spectrometry (1)
- Pyrethroids (1)
- Raid test (1)
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Organisationseinheit der BAM
- 1.9 Chemische und optische Sensorik (2) (entfernen)
Type-I pyrethroids are frequently used for disinfection purposes against insects such as adult mosquitoes, or diseases carried by insects, like Malaria or Zika in cabins of airplanes on long-distance flights especially from tropical destinations. This treatment is mandatory at various airports but compliance with the rules is difficult to test for. Moreover, if improperly used, these compounds can entail negative health effects for crews and passengers.
The detection of the pyrethroids will be achieved thanks to an antibody-gated indicator delivery system (gAID) utilizing monoclonal antibodies and hybrid sensory nanoparticles. After the interaction of the pyrethroid with the gAID, the liberated indicator (dye) will be detected. Since only few analyte molecules are necessary for pore opening yet release a large number of dyes, the system shows intrinsic signal amplification.
The device system to be developed has to be so simple that chemically untrained personnel, such as ground or cabin crew, can use it and obtain a result in a reasonably short period of time, e.g., ≤5 min. The need for high accuracy and sufficient sensitivity, established at 0.001 g m–2, is a critical requirement and imposes another significant challenge since this value is beyond current LFTs reported in the literature for pesticide detection to date.
In order to achieve the selectivity and sensitivity required by the test itself, and to avoid cross reactivity with other type I pyrethroids, the production of a monoclonal antibody for both Permethrin and Phenontrin is necessary. The synthesis of the two hapten molecules and the subsequent immunization with different immunogens represent the first goal of the work.
Laser-induced plasma (LIP) has drawn significant amount of attentions in the past decades, particular in elemental analyses for solid or liquid samples. Through proper focusing of the highly energetic laser beam, the plasma can also be ignited in the ambient air, where airborne analytes can be ionized. Such an effect enabled the use of airborne LIP as an ambient ionization source for mass spectrometric analyses. In contrast to other ambient desorption/ionization sources, airborne LIP does not require a specific discharge medium or expensive gas stream. Meanwhile, the airborne LIP produces reagent ion species for both proton-transfer and charge-transfer reactions in addition to the vacuum ultraviolent photons that are capable of promoting single photon ionization, which can be utilized to ionize polar and non-polar analytes. In order to gauge the analytical performance of airborne LIP, it is critical to understand the undergoing chemistry and physics during and after the plasma formation.
Due to the ambient nature of airborne LIP, the variations of air composition and flow strongly affect the plasma behaviors. Preliminary result suggested the addition of a laminar flow of nitrogen gas favored the formation of protonated species (MH+) against the molecular ones (M+). Although the gas addition approach cannot fully tune the ionization process towards the specific production of pseudo-molecular species versus molecular ones, the alternation of molecular ion formation can be used for analyte recognitions through post processing of the ion patterns. The pulsed character of the used lasers makes the reagent ion equilibrium both transient- and highly fluid-dynamically controlled. The acoustic shock-waves induced by the airborne LIP get affected by an applied gas streams towards the plasma center, influencing the molecular-ion and ion-ion interactions in the near proximity of the plasma.
To understand the airborne LIP formation, the temporally and spatially resolved optical emission spectra were recorded. The results will be correlated to time-resolved mass-spectrometric investigations of the ion profile during different stages of the plasma formation. As one example, the formation of pyrylium ion originating from aromatic compounds will be highlighted.