FG Experimentalphysik und funktionale Materialien
Refine
Document Type
- Doctoral thesis (3)
Has Fulltext
- yes (3)
Is part of the Bibliography
- no (3)
Year of publication
- 2013 (3) (remove)
Language
- English (3) (remove)
Keywords
Institute
The phenomenon of laser-induced periodic surface structures (LIPSS), or ripples, generated by near-infrared radiation with the central wavelength around 800 nanometer (λlaser ≈ 800 nm) and pulse duration about of 100 femtosecond (τpulse ≈ 100 fs) on solid targets is considered in this dissertation. The main aim of the work is a better understanding of the fundamental processes of laser-matter interaction resulting in pattern formation by femtosecond (fs) laser ablation. The problem is of great interest both in fundamental and applied science. The knowledge of the underlying physical mechanisms will provide the opportunity to control surface nanostructuring, which has a big application potential in many modern technologies. Femtosecond LIPSS observed at the bottom of ablation crater reveal a large variety of features including nanostructures with periods below 100 nm. Moreover, the ripple size depends mainly on the irradiation dose/absorbed laser energy and is rather insensitive to the variation of laser wavelength or incidence angle. The orientation of the structures is dictated by laser polarization. All these experimental observations and an astounding similarity of the structures to other patterns originating from instabilities led to the idea to attribute the femtosecond laser nanostructuring to a self-organized pattern formation from laser-induced surface instability. In this dissertation, surface pattern formation upon femtosecond laser ablation is considered in the framework of an adopted surface erosion model, based on the description of spontaneous pattern formation on surfaces bombarded with high-energy ions. We exploit the similarity to ion-beam sputtering and extend a corresponding model for laser ablation by including laser polarization. It has been found that an asymmetry in the deposition and dissipation of the incident laser energy, related to the laser polarization, results in a corresponding dependence of coefficients in a nonlinear equation of the Kuramoto-Sivashinsky type. The surface morphologies calculated in the framework of this model for different configurations of the incident laser electric field show an excellent qualitative agreement with structures observed in ultra-short pulse ablation experiments. In this work, properties of the periodic surface structures induced upon femtosecond laser ablation are studied in detail, focusing on a systematic investigation of the main control parameters regulating the pattern formation process. The results support the non-linear self-organization mechanism of pattern formation from laser-induced surface instability.
Semiconductor nanowires, also called nanorods or nanowhiskers, are of particular interest for various applications in nanotechnology. Especially, germanium as a CMOS compatible material with its good electronic properties has gained renewed interest in recent years due to the availability of modern gate dielectrics. The present work deals with the vapor-liquid-solid growth of germanium nanowires and their characterization. The Growth has been carried out by means of molecular beam epitaxy using differently oriented germanium and silicon substrates whereas gold has been used to create metal catalyst droplets with radii of typically 100 nm and below. All stages from the substrate preparation to the final growth have been investigated in the frame of this work to find significant control parameters that influence the growth result. The droplet formation by means of gold evaporation onto the heated substrates has been investigated extensively on different substrates and for different surface preparations to identify parameters that are crucial for the resulting size distribution. Thereby sticking effects of the droplet circumference turned out to influence the radius distribution significantly. Germanium nanowires have been observed to grow preferentially along the <011> crystallographic directions on all utilized substrate orientations leading to defined possible inclinations of the wires with respect to the substrate normal. In contrast to the faceting known from silicon wires, the sidewalls mainly exhibit four flat {111} facets whereas the tip is roof shaped consisting of another two {111} facets. Different models which describe the inclined growth are presented and discussed. Furthermore, the material transport during the growth has been investigated. The nanowire length was found to be up to eight times larger than the nominal layer thickness according to the total amount of deposited germanium which is explained by surface diffusion towards the nanowires. The diffusion dominated growth regime was confirmed by length-radius-plot showing a decrease of the nanowire length at increasing radii. A temperature dependent diffusion model has been utilized to describe the observed nanowire length as a function of the substrate temperature. Beside conventional nanowires, so-called in-plane nanowires which grow along the substrate surface have been studied. Like their vertically growing counterparts, they also tend to grow along <011> in-plane directions which is particularly distinct on Ge(011) substrates. However, the fraction of nanowires which are aligned along <011> is influenced by substrate imperfections which was intentionally affected by means of wet-chemical substrate preparation. In addition to the nanowire growth, techniques for selective catalyst removal as well as for nanowire embedding in an insulating, transparent matrix have been established which can be important prerequisites for further nanowire processing in terms of electric or optoelectronic applications.
The aim of this work is to establish tools for optical characterization of defects in thin-film silicon solar cells. This is related to a challenging process of setup adjustments and careful interpretation of the measured raw data because of several artifacts and effects, which are typical for thin films. They are caused by the low layer/sample thickness and the related high impact of interfaces. Therefore, different thin-film samples were investigated to establish a process to correct/minimize these thin-film effects. The possibility of a knowledge transfer from mc-Si wafers with bulk thickness to thin Si films was checked. This would simplify a successful interpretation of the corrected data. Defects in mc-Si were investigated for many decades without the parasitic impact of thin films. Other Si phases, which are limited to thin-film samples, were investigated to learn details about their specific physical properties. These Si phases are amorphous and microcrystalline silicon. Additional to that electroluminescence investigations were performed on mc-Si solar cells. These investigation deals with topics, which are not even understood on bulk materials up to now. This could offer a basic for further knowledge transfers to thin-film Si.