LS Angewandte Physik / Sensorik
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- Aluminium (1)
- Diffractive X-ray lens (1)
- Diffraktive Röntgenlinse (1)
- Double cantilever beam test (1)
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- Fanointerferenzen (1)
- Festkörperphysik (1)
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Institute
The method of microscopic imaging using X-rays and diffractive lenses was developed at synchrotron radiation facilities and it was recently transferred to systems with laboratory X-ray sources. The first part of this thesis focuses on instrumentation, in particular on the fabrication, characterization, and application of multilayer Laue lenses (MLL). The second part describes a micromechanical in-situ test that is used to study crack propagation with X-ray microscopy in microchips in a dedicated fracture mechanics experiment called micro double cantilever beam test (MicroDCB).
MLLs were fabricated from WSi2/Si multilayer coatings using mechanical preparation and focused ion beam milling. Initial characterization of the obtained lenses using scanning electron microscopy and X-ray microscopy was used to evaluate the quality of the multilayer stack and particularly to identify geometrical imperfections of individual lens elements. Crossed partial MLLs were assembled as a compact lens device for two-dimensional operation, i.e. point focusing of synchrotron radiation or full-field transmission imaging. The optical properties were simulated using a geometrical optics approximation and a physical optics model. Experimental results verify full-field imaging using crossed partial MLLs with a focal length of 8.0 mm for Cu-Ka radiation in a laboratory X-ray microscope. Sub-100 nm resolution is shown and remaining aberrations are discussed. So-called wedged MLLs employ dynamic diffraction to increase the diffraction efficiency. A fabrication process is presented that allows a subsequent geometrical modification of the lens element using a stress layer. Thus, the wedged geometry is realized independently of the multilayer coating. The resulting layer tilt is measured using a laboratory X-ray microscope. First investigations of such wedged MLLs with synchrotron radiation at a photon energy E=15.25 keV show an enhancement of the diffraction efficiency of 57 % in comparison to a tilted MLL with the same dimensions.
The long working distance of the X-ray microscope facilitates the integration of customized equipment to perform in-situ experiments. The MicroDCB tester was designed and built to drive a crack in an appropriately prepared specimen. It is compatible with the X-ray microscope and it allows tomographic studies under load. In particular, the method was applied to investigate crack propagation in the on-chip interconnect stack of advanced microelectronics products. Stable crack propagation at this location was achieved. Subsequent tomographies were acquired at several load steps. The reconstructed datasets show no critical distortions. This test is assumed to provide valuable information about crack propagation such heterogeneous structures, what is of interest to address reliability issues.
Im Mittelpunkt der vorliegenden Arbeit stehen die Untersuchung von Fanointerferenzen innerhalb der wissenschaftlichen Methode der resonanten Photoelektronenspektroskopie. Basis dieser Methode ist die Interpretation aus dem Festkörper emittierter Elektronen. Die detektierten Elektronen können dabei aus direkten Photoemissionen oder Deaktivierungsprozessen (Spectator-/Participator-Zerfälle) nach resonanten Anregungen von Rumpfelektronen stammen. Führen beide Prozesse zum selben Systemendzustand, können die emittierten Elektronen interferieren, was sich in der Ausprägung eines charakteristischen Intensitätsprofils, dem Fano-Profil, äußert. Die Form des Intensitätsprofils kann dabei über den Fanoparameter q beschrieben werden.
Im Rahmen dieser Arbeit erfolgte die Diskussion von Fanointerferenzen an organischen (HOPG, Graphenflocken) und oxidischen (CuO, In2O3, SiO2) Materialsystemen.
Im HOPG und den untersuchten Graphenflocken konnten mittels der Analyse der Fanoprofile exzitonische Zustände innerhalb der Bandlücke nachgewiesen werden.
Durch die Untersuchungen am CuO konnte die Variation des Fanoparameters in Abhängigkeit vom Grundzustand des Systems gezeigt werden.
Die für die untersuchten In2O3 Einristalle beobachteten Interferenzen beruhen auf der Existenz besetzter Zustände an der Fermienergie.
Abschließend konnte eine Korrelation des jeweils auftretenden Fanoparameters mit den beobachteten multi-hole-Auger-Zerfällen nachgewiesen werden.
Aluminium based micro mirrors exposed to UV laser light – in situ performance and degradation
(2014)
The present thesis characterises aluminium based micro mirrors exposed to UV laser light. Such micro mirrors, used in highly integrated spatial light modulators, can for example be used as programmable masks in DUV micro lithography. Therefore they are sensitive to any performance loss arising from material degradation or changes in the mirror curvature. The key question addressed in this thesis is the investigation of the in situ curvature change, which means characterisation during a real laser irradiation. For this purpose a measuring station was designed, combining a phase-shift interferometer, an optical microscope and the laser irradiation of the sample at 248nm. The Phase-shift interferometry technique used is a very sensitive contactless optical measurement principle, which allows a resolution of the sample surface in the single-digit nanometer range.
A multitude of irradiation tests were performed to describe the change of mirror curvature as a function of different irradiation parameters such as the pulse energy, the laser repetition rate or the ambient atmosphere. The most significant effect was detected by the variation of the applied pulse energy, which was in the range of 10⁻⁵J/cm²-10⁻²J/cm². A general conclusion was that a minimum energy of 10⁻⁵J/cm² at a repetition rate of 1kHz is required to detect any laser induced change of the mirror curvature. At higher energy levels two characteristic behaviours can be distinguished. Up to a level of 10⁻³J/cm² the mirrors show a permanent concave bowing in the range of λ/100. A further increase of the pulse energy causes an accumulating bowing in the opposite direction (convex) of λ/10 within some ten million laser pulses. However this convex bowing partially relaxes after the irradiation is stopped.
Another aspect of the thesis was the determination of laser induced material degradation. For this purpose irradiated mirrors were investigated by means of different devices and analytical techniques such as atomic force microscopy (AFM), reflectometry and transmission electron microscopy (TEM). The AFM analysis showed a slight increase of surface roughness and a directional change of the grain size. As a result of the TEM analysis it turned out that arrangement and shape of the grains seems not to have changed. But after the irradiation the growth of a porous oxide layer up to 20nm on the upper mirror surface was noticed.
Finally different hypotheses are proposed to explain the mechanisms behind the observed concave and convex bowing at particular pulse energies. In this connection it is assumed that the mirrors at pulse energies larger than 10⁻³J/cm² do not show a static bowing at all. It is rather assumed that the mirror bow oscillates with the laser repetition rate.