Doctoral Thesis
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Surface and electrode modifications allow the alteration of surface and electrode properties required for certain applications. In the first part of this thesis, a pH sensitive graphite/quinhydrone composite electrode for Flow-Injection-Analysis (FIA) systems was optimized by using polysiloxane as binder material. This allows an easier handling of the electrode. Furthermore, new applications of the FIA system in conjunction with the pH sensitive detection system were developed. The electrode used here in conjunction with a common reference electrode proved to be a very useful potentiometric detector for FIA acid-base titrations of aqueous solutions. Even acid-base titrations in buffered solutions were performed successfully with the FIA system allowing the determination of activities of enzymes, which catalyse reactions with increasing or decreasing proton concentrations. A FIA system was applied to measure calcium and magnesium ions in different water samples by measuring the hydronium ion release during the complexometric reaction between EDTA and calcium or magnesium ions. A method was established to determine sequentially the titratable acidity and the pH of different wine samples. The new FIA method fulfils the official requirements of the "Organisation Internationale de la Vigne et du Vin" with respect to reproducibility and repeatability and can be easily adjusted to the legal requirements in USA and Europe. In summary, the first part of this thesis shows that the FIA system in conjunction with the graphite/quinhydrone/polysiloxane composite electrode is very well suited for simple, rapid and automatic determinations of small sample volumes in the areas of water analysis, food analysis or even biochemical analysis, provided that hydronium ions are involved. For all applications, one and the same measuring device without changing the detection system is used. Only different carrier solutions are necessary, which can be provided by a proper stream selector. The second part of this thesis is focused on the modification of gold surfaces of medical devices by treatment with OH radicals. These investigations are based on previous studies of the impact of OH radicals on mechanically polished gold surfaces resulting in a smoothing of the surface by dissolution of highly reactive gold atoms. In this thesis, the effect of OH radicals, generated either ex vivo by Fenton solutions or in vivo by immune reactions, on gold implants was analysed using atomic force microscopy. It was found that there is an analogy between the exposure of gold to Fenton solutions and the exposure of gold to immune reactions. The pre-treatment of gold implants with OH radicals of Fenton solution prevents surface alterations of the gold implants in vivo. This indicates that the in vivo release of gold from implants can be reduced by exposing the gold implants to Fenton solution before implantation. Finally, the modification of gold surfaces by OH radicals was applied to a medical nanodetector, which is coated with a gold layer and functionalized with antibodies, for isolating circulating tumour cells (CTCs) from the blood stream of cancer patients. By treating the gold layer of the nanodetector with OH radicals generated by Fenton solution or by UV-photolysis of hydrogen peroxide, the cytotoxicity of the gold layer after gamma irradiation was reduced to almost zero. This modification of the gold surface with OH radicals allows applying the nanodetector for in vivo applications.
The biological decontamination and sterilization is a crucial processing step in producing and reprocessing of medical devices. Since polymer-based materials are increasingly used for the production of medical devices, the application of conventional sterilization processes are restricted to a certain extent. Conventional sterilization techniques on the basis of high temperatures, toxic gases, or ionizing radiation can be detrimental to the functionality and performance of polymeric materials. For this reason, alternative, gentle, and efficient decontamination processes are required. One possible approach is the use of non-thermal physical plasmas. Especially atmospheric pressure plasma is receiving great interest due to the absence of vacuum systems which is highly attractive for the practical applicability. Its mechanisms of action enable the efficient killing and inactivation of micro-organisms which are attributed to the interaction of plasma-generated reactive oxygen and nitrogen species (ROS, RNS) as well as plasma-emitted (V)UV radiation. Owing to the moderate gas temperatures (near or at room temperature) so-called cold plasmas are well-suitable for the treatment of heat-sensitive materials, such as polymers, without affecting their bulk properties. The present work focuses on the investigation of atmospheric pressure plasma processes for the biological decontamination of polymers. The objective is to help elucidate on the one hand the impact of varied plasma process parameters on the inactivation of micro-organisms and on the other hand the influence of plasma on the surface properties of the substrate. The investigations were performed by means of a high-frequency driven plasma jet (from the product line kINPen) operated with argon and argon-oxygen mixtures. Three main aspects were analyzed: 1. The effect of plasma on the viability of micro-organisms dependent on working gas, treatment time, and the sample distance (distance between the jet nozzle and the substrate). 2. The plasma-based removal of microbial biofilms. 3. The effects of the plasma treatment on the surface properties of selected polymers. Additionally to the capability of the applied plasma jet in killing microbes the efficacy of this plasma jet for the removal of complex biological systems (e.g. biofilms) is shown. To model cell constituents of bacteria different synthetic polymers were chosen to gain insight into the decomposition process responsible for biofilm degradation. By investigating the impact of atmospheric pressure plasma on physico-chemical surface properties of various synthetic aliphatic and aromatic polymers the interaction mechanisms between plasma and plasma-exposed material are discussed. These studies are accompanied by applying different optical plasma diagnostic techniques (optical emission spectroscopy and two-photon absorption laser induced fluorescence spectroscopy) to obtain information on the plasma gas phase which contributes to the elucidation of the reaction mechanisms occurring during plasma exposure. Moreover, it is presented to which extent the plasma treatment influences the surface properties of polymers during the plasma-based bio-decontamination process and further, the benefits of surface-functionalized polymers for biomedical application is discussed.