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- surface analysis (1) (entfernen)
69
Different amino group carrying surfaces, prepared by spin coating, self-assembly and plasma polymerization, were successfully investigated by XPS and NEXAFS. Amino groups were derivatized with the widely used primary amino group tags, PFB and TFBA, prior to analysis. Primary amino group quantification was then carried out according to the spectroscopic data. The gas-phase derivatization reactions of PFB and TFBA were also studied in order to understand their reaction behaviour, the spectral differences they cause and the time required for reaction completion. For the determination of maximum reaction yields of gas-phase surface derivatizations, a set of liquid-phase derivatization reactions was carried out. The selected amino compounds with a different degree of steric hindrance were reacted with PFB and TFBA. The yields (78-89%) were accepted as the upper limit of the gas- phase surface derivatizations. Thin films were prepared by spin coating of 4,4’-methylenebis(2,6-diethylaniline) on Si wafers and were reacted with the markers at 50ºC. The saturation time was found to be 15 min. for both reactions. XPS measurements showed the formation of a CF3 or C-F peak and a BE shift of the corresponding C=N group indicating a successful reaction. The NEXAFS results supported the XPS data by showing a sharp π*(C=N) resonance. The CF3 and C-F resonances were observed in the σ* region. The yields of the reactions were calculated from the component areas of the high resolution XP N1s spectra and from the [F]/[N] ratios. The surface amino groups were calculated from the stoichiometry and from the XP survey scans. The results were consistent with each other and showed a yield of 80-90% for PFB and 60-70% for TFBA. Self-assembled monolayers (SAMs) of different terminal groups were prepared and investigated with XPS and NEXAFS. The spectral properties of aliphatic and aromatic SAMs were compared to the reference surfaces of poly(allylamine) and 4,4’-methylenebis(2,6-diethylaniline) spin coated on Si wafers. NEXAFS was used to determine the orientation of SAMs. An angle resolved NEXAFS was applied at the C K-edge in order to prove a successful SAM deposition on Au. The intense peaks in the difference spectra are due to the polarization dependence in the orbital responsible for the NEXAFS resonance showing a successful bond/functional group orientation. The gas-phase surface derivatization of two amino terminated SAMs, 4-aminophenylbutane-1-thiolate and 11- amino-1-undecanethiol, were studied. 4-aminophenylbutane-1-thiolate was derivatized with TFBA whereas 11- amino-1-undecanethiol with PFB at room temperature for 90 min. The stoichiometrical data were compared to the atomic percentages obtained from the XPS spectra and the results were consistent with each other. The yields of the reactions (60-80%) were obtained from the high resolution N1s spectra. Since a certain number of spectra had to be acquired to reach reasonable S/N ratios, a considerable danger of beam damage in the NEXAFS measurements occurs. The potential radiation damage effects on the C and N K- edge of 11-amino-1-undecanethiol film on Au was studied. The spectral differences before and after 1 h radiation exposure were investigated. The intensities of resonances related to unsaturated species such as C=C and C=N were increased for the C K-edge spectra. The NEXAFS N K-edge spectra of 11-amino-1-undecanethiol film showed no significant irradiation effect. Plasma deposited allylamine samples were successfully investigated by XPS and NEXAFS. Primary amino group quantification on plasma deposited allylamine surfaces was carried out by derivatization after plasma deposition. TFBA and PFB showed side reactions when plasma polymerization was used. Due to the radical mechanisms, C- F bond cleavages followed by HF releases occurred resulting in a second peak formation in XP F1s spectra. PFB derivatized surfaces suffer more from the C-F bond cleavage since fluorinated aromatic molecules are highly susceptible to nucleophilic aromatic substitution. Potential X-ray beam damage of TFBA was studied by a 10 h XPS measurement and showed a fluorine degradation. Due to the short measurement times, X-ray beam damage can be neglected. Since HF release on the TFBA surfaces are lower in percentage, it was used as the marker reagent for the coupling reactions. A series of samples deposited at 20W, 0.5 duty cycle and 15 Pa were derivatized to determine the time required for saturation (90 min.). Plasma polymerized allylamine samples with different duty cycle, power and pressure values were prepared in order to study the effects of external plasma parameters on the primary amino group retention. The [CF3] area percentages, obtained from the high resolution XP C1s spectra, vs. plasma parameter variations were compared. Duty cycle, power and pressure variation experiments showed the same trend on amino group retention. The more the plasma conditions move from mild to hard, the more rearrangements occur on the surface. Milder plasma conditions promote the retention of amino groups originating from the allylamine monomer. QEA (Quantitative Elemental Analysis) and PFA (Peak Fit Analysis) methods were used for the quantification of surface amino groups, depending on the XPS data. The results of two data evaluation methods were compared by using a Youden plot showing no deviation. NEXAFS was used along with XPS in order to study plasma parameter effects on amino groups. As being sensitive against unsaturated moieties, NEXAFS was successfully applied to plasma deposited allylamine surfaces. An increase in fragmentation rate due to a variation in plasma parameters was followed by intensity changes in NEXAFS C K-edge spectra. An inter-laboratory comparison of hydroxyl group determination on plasma surfaces was carried out. Hydroxyl groups on polypropylene foil, treated with oxygen plasma at 100 W for 90 s, were coupled with TFAA. The surfaces were investigated with XPS and the [OH] amount on the surfaces was calculated by QEA and PFA methods showing a 33% deviation between the two methods. CD-XPS is applied successfully in order to determine different functional groups on the thin film surfaces. However, a validated derivatization procedure, which can be easily applied in each lab, should be established. The used hardware and the peak fitting procedures of XPS should be defined in detail for the validation. The sample inhomogeneity and the effects of beam damage play a role on the deviations of the results. The surface thickness should be optimized for consistency. By the derivatization reactions, the surface amino groups are successfully quantified. As the next step, the studied surfaces can be used for potential biological applications, such as coupling the available amino groups with DNA or stem cells.