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- 6 Materialchemie (8)
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Paper des Monats
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Zinkschichten wurden mit den zerstörungsfreien Methoden Röntgenfluoreszenz (XRF), mechanischer Tastschnitt (MS), Röntgenbeugung (XRD) und instrumentierter Eindringprüfung (IIT) hinsichtlich der makroskopischen und mikroskopischen Schichteigenschaften untersucht. Die Rauheit der Zinkschichten hängt im Wesentlichen von der Substratoberfläche ab. Inhomogenen Schichtdickenverteilung treten bekanntermaßen am Rand von Beschichtungsgestellen auf. Die plasto-elastische Eigenschaften Härte, E-Modul und Kriechen sind bei unterschiedlichen Abscheidungen vergleich- und reproduzierbar. Diese makroskopischen Schichteigenschaften sind geprägt von der Mikrostruktur der Schicht, die eine Vorzugsorientierung der Kristallite in der Netzebene (110), die senkrecht zur Substratoberfläche steht, zeigt.
Die Oberflächentechnik ist eine Schlüsseltechnologie in nahezu zu allen industriellen Branchen. Mit Ausnahme der mechanischen Stabilität, die das Substrat bereitstellt, werden verschiedenartigste Funktionen materialsparend, zum Teil hochintegriert mit maßgeschneiderten Schichtdesigns unter Ausnutzung von Nano- und Quanteneffekten auf Oberflächen appliziert. Ein Großteil der Fertigungskosten in der Mikro- und Nanotechnik wird durch Reinräume und die Umsetzung ausgeklügelter Reinigungsstrategien zur Vermeidung von Restverschmutzungen und partikulären Belegungen
verursacht, da diese unweigerlich zum Bauteilversagen führen. Die Validierung des Reinigungszustandes ist somit von zentraler Bedeutung für die Schichtqualität und Produktfunktionalität. Dies gilt in Abhängigkeit von der Applikation und den vertikalen Schicht- bzw. lateralen Strukturdimensionen sowohl für Fertigungsprozesse im Reinraum als auch für solche in robuster Umgebung. In der Praxis kommt es häufig vor, dass man mikroskopisch scheinbar saubere Substrate erst durch die Beschichtung „enttarnt" und dann Defekte oft mit bloßem Auge sichtbar werden. Noch problematischer ist der Einbau von Verunreinigungen während der Schichtabscheidung, die zunächst nicht sichtbar sind, dann aber zum Bauteilversagen führen.
Core-shell (CS) particles with a polymeric core and a silica shell play an important role in the materials and (bio)analytical sciences. Besides the establishment of reliable synthesis procedures, comprehensive particle characterization is essential for batch-to-batch reproducibility and objective performance assessment across architectures, protocols, and laboratories. Particle characterization with respect to size, size distribution, shell thickness and texture, surface area and roughness or materials composition is commonly conducted with different analytical methods, often on different samples. Our approach uses a dual-mode TSEM/SEM set-up with an EDX detector to obtain a complementary data set with sufficient statistical confidence of one and the same sample on a single instrument. Our protocol reveals information about size, size distribution and shell thickness of the various particles employed from overview images, while an increased field of view (FOV) and high-resolution EDX analysis yields detailed information on shell texture and elemental composition. An image analysis tool was developed to derive and quantify the profile roughness of CS particles from individual beads. Comparison with surface roughness data from AFM showed a similar trend in roughness across the series of particles. Reliable classification into smooth and rough is proposed and roughness changes within different particle batches were tracked systematically.
Commercial grade-1 titanium samples (Ti, 99.6%) were treated using three alternative methods, (i) femtosecond laser processing, (ii) thermal heat treatment, and (iii) electrochemical anodization, respectively, resulting in the formation of differently conditioned superficial titanium oxide layers. The laser processing (i) was carried out by a Ti:sapphire laser (pulse duration 30 fs, central wavelength 790 nm, pulse repetition rate 1 kHz) in a regime of generating laser-induced periodic surface structures (LIPSS). The experimental conditions (laser fluence, spatial spot overlap) were optimized in a sample-scanning setup for the processing of several square-millimeters large surface areas covered homogeneously by these nanostructures. The differently oxidized titanium surfaces were characterized by optical microscopy, micro Raman spectroscopy, variable angle spectroscopic ellipsometry, and instrumented indentation testing. The tribological performance was characterized in the regime of mixed friction by reciprocating sliding tests against a sphere of hardened steel in fully formulated engine oil as lubricant. The specific tribological performance of the differently treated surfaces is discussed with respect to possible physical and chemical mechanisms.
Ti/TiN multilayer coatings with multilayer periods in the range 550 nm and a final thickness of 2 µm were deposited on steel substrates by cyclic modulation of nitrogen gas flow into the chamber of a PVD sputtering device. Coating characterization was performed by cross-sectional transmission electron microscopy, glancing-angle X-ray diffraction and instrumental indentation testing. Individual a-titanium and titanium nitride layers were always observed, although for the finer microstructures, the TiN layers were thicker than the Ti layers by a factor three. The plastic hardness of the films increased steadily with decreasing layer spacing, following a HallPetch relationship. Finally, a hardness value of 42 GPa was reached, which is similar to that of a thick TiN monolayer, prepared under the same coating conditions.
Recently, time-of-flight secondary ion mass spectrometry (ToF-SIMS) and X-ray photoelectron spectroscopy (XPS) instrumentation has been used to address areas of interest within micro-fluidic devices providing full access to the surface chemistry established at the bottom of micro-channels therein. After careful calibration, information on surface chemistry as obtained by ToF-SIMS or XPS can be interpreted in terms of wettability expressed as contact angles which are then characteristic for the inner walls of micro-channels. Standard contact angle measurement is not applicable in micro-channels. The approach has been demonstrated to be successful with two different micro-fluidic devices hot embossed into high-end quality poly(methyl methacrylate) (PMMA) or Polycarbonate wafers. A pre-selected surface chemistry at micro-channel walls can be established by plasma technologies but ageing and rinsing effects have to be under control. A combination of ToF-SIMS, XPS and contact angle measurement techniques has been demonstrated to provide the required information. Finally, it is shown by ToF-SIMS and XPS analysis that in the production of micro-fluidic parts during practical processing using hot embossing technologies, material originating from cover foils will reside on the polymer wafer's surface. Moreover, residues of releasing agents as silicone oil used during processing can be detected by ToF-SIMS. Both cover foil residues and silicones are issues of trouble shooting in micro-fluidics because they will change contact angles efficiently.
Single Femtosecond Laser-Pulse-Induced Superficial Amorphization and Re-Crystallization of Silicon
(2021)
Superficial amorphization and re-crystallization of silicon in <111> and <100> orientation after irradiation by femtosecond laser pulses (790 nm, 30 fs) are studied using optical imaging and transmission electron microscopy. Spectroscopic imaging ellipsometry (SIE) allows fast data acquisition at multiple wavelengths and provides experimental data for calculating nanometric amorphous layer thickness profiles with micrometric lateral resolution based on a thin-film layer model. For a radially Gaussian laser beam and at moderate peak fluences above the melting and below the ablation thresholds, laterally parabolic amorphous layer profiles with maximum thicknesses of several tens of nanometers were quantitatively attained. The accuracy of the calculations is verified experimentally by high-resolution transmission electron microscopy (HRTEM) and energy dispersive X-ray spectroscopy (STEM-EDX). Along with topographic information obtained by atomic force microscopy (AFM), a comprehensive picture of the superficial re-solidification of silicon after local melting by femtosecond laser pulses is drawn.