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The aim of this work is to study the optical properties of crystal defects in multicrystalline solar silicon and poly-/microcrystalline silicon thin films on glass substrate.
First a setup for photoluminescence imaging on multicrystalline silicon solar wafers was developed. This system is suitable for detecting band-to-band luminescence as well as defect-related luminescence at room temperature on large-scale wafers at different stages of their processing.
Spectroscopic photoluminescence investigations of multicrystalline silicon solar wafers indicated a new intense luminescence line at ≈ 0.91 eV at room temperature. The origin of this line is probably found in a specific grain boundary. Furthermore, luminescence in the region of 0.8 eV was investigated in detail, and it was found that probably oxygen is responsible for a peak at 0.77 eV at 80 K.
Electroluminescence investigations at room temperature at both materials exhibit extended defect structures such as grain boundaries. Furthermore, it can be concluded that electroluminescence imaging in reverse bias mode indicate on serious breakdown points in solar cells, which can lead to destruction of solar cells and modules. By comparing defect-related and reverse bias electroluminescence images, a difference in the spatial distribution of defects emitting D1 radiation and defects emitting light under reverse bias beyond -12 V is detectable.
In addition, there seems to be a correlation in the distribution of non-doping impurities and photoluminescence. Concerning this, vertical slabs of two silicon blocks were examined by means of Fourier-transform infrared spectroscopy and photoluminescence. A correlation of the distributions of interstitial oxygen and the band-to-band luminescence profiles could be found. Additionally, a correlation between D3/D4 luminescence profile and nitrogen distribution in the blocks was observed.
Finally, the growth process, particularly the transition from amorphous to microcrystalline silicon by PECVD, was studied by combined photoluminescence and Raman investigations. Formation of silicon nano-grains was detected by means of photoluminescence and Raman spectroscopy.
The aim of this work is to describe and explain the properties of defects in multicrystalline (mc) and thin-film solar silicon (Si). For this reason, investigations with scanning electron microscope methods were performed, namely cathodoluminescence (CL), electron beam induced current (EBIC), electron backscatter diffraction (EBSD) and transmission electron microscopy (TEM). Additionally, photoluminescence (PL) and reverse-biased electro luminescence (ReBEL) measurements were also conducted. Through correlation of PL, ReBEL and EBIC, it was possible to localize breakdown sites at mc-Si solar cells. Problems that occurred during the thin-film EBIC investigations could be demonstrated and explained. For the first time cross sectional EBIC investigations could be performed on thin-film silicon tandem cells. At mc-Si, it was possible to observe the oxygen related P-line next to the common D1-line luminescence at 10 K clearly distinguishable from each other at once. Furthermore, a hitherto not comprehensively discussed intense luminescence line at 0.93 eV could be described in detail. Through correlation of PL, CL, EBIC, EBSD, and TEM measurements, the origin of the now named Di luminescence at 0.93 eV is postulated to be in connection with Frank partial dislocations, with two energetic levels inside the band gap, one at 112±9 meV below the conduction band and the other at 93±10 meV above the valence band. Finally, it was attempted to explain the behavior of twin boundaries at temperatures below 30 K, where these show an enhanced collection efficiency in comparison to the surrounding grains. An alteration of the local “freeze out” temperature, possibly by a local band gap narrowing, is suggested as a reason. Another conceivable explanation is a breakdown of the diode potential at the grains.
Die stetig fortschreitende Miniaturisierung in der Halbleiterindustrie macht es notwendig, Oberflächenparameter mit Auflösung im Nanometerbereich zu messen und auch abzubilden. Von größtem Interesse sind hierbei das Oberflächenpotential und die Kapazität der oberflächennahen Bereiche, da diese Aussagen über die elektronische Struktur erlauben. Hierbei muss großes Augenmerk auf die Möglichkeit der zerstörungsfreien und präparationsarmen Messung gelegt werden, da jede Behandlung der zu untersuchenden Materialien deren Oberflächeneigenschaften ändert. Im Rahmen dieser Arbeit wurden auf der Atomkraftmikroskopie basierende Methoden sowohl experimentell als auch mit Hilfe von Simulationen auf ihre Anwendbarkeit für die Untersuchung von Halbleiteroberflächen evaluiert. Es stellt sich heraus, dass die kontaktfreien Methoden „Scanning Kelvin Probe Microscopy“ und „Scanning Capacitance Microscopy“ sehr gut geeignet sind, um die elektronische Struktur der Probenoberfläche qualitativ zu beurteilen. Allerdings muss für quantitative Aussagen ein recht großer rechentechnischer Aufwand betrieben werden.
Nanotopography development induced by photoelectrochemical in situ conditioning of silicon is followed using a combination of surface sensitive analysis techniques. In an etching study, vertical nanostructure analysis reveals a buried stressed layer within silicon, identified by Brewster-angle analysis (BAA). In conjunction with in system synchrotron radiation photoelectron spectroscopy (SRPES), a superior quality hydrogen terminated Si(111) surface could be prepared by obliteration of the intermediate stressed layer. Using a novel photoelectrochemical structure formation method, a variety of vertical nanotopographies has been generated and analyzed by in situ Brewster-angle reflectometry (BAR) and scanning probe microscopy (SPM). Shaping of the nanostructures became possible by real-time monitoring using BAR. Appearances range from aligned single nanoislands with improved aspect ratio to connected Si nano-networks. A model was developed to describe the nanostructure formation based on stress-induced selective oxidation. Increased local photo-oxidation is found to result in the formation of extended horizontal micro- and nanostructures with fractal properties. Within a defined light intensity range, the structures reveal the azimuthal symmetry of the investigated crystal planes (111), (100), (110) and (113). The observed features could be reproduced using a model that is based on the interplay of stress in silicon, oxidation by light generated excess holes and locally increased etching in fluoride containing solution.
This thesis addresses the electro-optical properties of silicon, containing dislocations. The interest in those properties is driven mainly by two practical reasons. One is the optical characterisation of multicrystalline silicon for solar cells, and the other is the design of light emitting diodes based on silicon by enhancement of silicon radiative properties via introduction of dislocations. The work demonstrates that dislocation specific radiation may provide a means for optical diagnostics of solar cell grade silicon. It provides insight into the mechanisms governing the dislocation recombination activity, their radiation, and how are they influenced by other defects present in silicon. We demonstrate that photoluminescence mapping is useful for monitoring the recombination activity in solar cell grade silicon and can be applied for identification of contaminants, based on their photoluminescence signatures. It is shown that the recombination at dislocations is strongly influenced by the presence of metals at the dislocation sites. The dislocation radiation activity correlates with their electrical activity. Thus, photoluminescence mapping at room temperature may provide a means for revealing and characterising of dislocation-rich regions in multicrystalline silicon. It is shown that the dislocation and band-to-band luminescence are essentially anti-correlated. The band-to-band intensity being related to the diffusion length of minority carriers can be used for measurements of diffusion length, as long as the surface recombination rate is controlled. Moreover, photoluminescence mapping can be used for the detection of optically active defects in solar grade materials. Thus, betaFeSi2 precipitates, with a luminescence at 0.8 eV, were detected within the grains of block cast materials. They exhibit a characteristic feature of quantum dots, namely blinking. The second aspect of the thesis concerns the topic of silicon based light emitters for on-chip optical interconnects. The goal is an enhancement of sub-band-gap or band-to-band radiation by controlled formation of dislocation-rich areas in microelectronics-grade silicon as well as understanding of the processes governing such enhancement. For light emitters based on band-to-band emission it is shown, that internal quantum efficiency of nearly 2 % can be achieved, but the emission is essentially generated in the bulk of the wafer. On the other hand, light emitters utilizing the emission from dislocation-rich areas of a well localized wafer depth were explored. Three different methods for reproducible formation of a dislocation-rich region beneath the wafer surface were investigated and evaluated in view of their room temperature sub-band-gap radiation: (1) silicon implantation and annealing, (2) epitaxially grown SiGe buffer, and (3) direct wafer bonding. The most promising dislocation-based emitter appears the utilization of a dislocation network produced by wafer bonding. It is shown, that monochromatic D1 radiation (wavelength 1.5 µm) can be generated in a well localised depth of the wafer. The radiation is not absorbed in silicon and such localized emitter can, potentially, be coupled with silicon waveguides and Ge-based detectors for optical interconnects.